Disclosed herein is an antenna device that includes a conductor pattern. The conductor pattern includes: a first loop portion extending in a first loop direction; a second loop portion extending in a second loop direction opposite to the first loop direction; a connection portion including a plurality of connection patterns connecting the first loop portion and the second loop portion; and end portions including one end and other end of the conductor pattern. The second loop portion and the end portions are disposed inside the first loop portion. The first loop portion is formed by a plurality of first conductive wires disposed in a mesh. The second loop portion and the end portions are formed by solid second conductive wires.
G06K 19/077 - Constructional details, e.g. mounting of circuits in the carrier
H01Q 1/22 - SupportsMounting means by structural association with other equipment or articles
H01Q 7/00 - Loop antennas with a substantially uniform current distribution around the loop and having a directional radiation pattern in a plane perpendicular to the plane of the loop
A magnetic sensor includes a first MR element disposed on an inclined surface and configured to generate a first detection signal, a second MR element disposed on an inclined surface and configured to generate a second detection signal, and a conversion section configured to convert the first detection signal and the second detection signal into a first corrected signal and a second corrected signal, respectively. The conversion section is configured to change an amplitude of at least either one of the first and second detection signals to make a ratio of the amplitude of the second corrected signal to the amplitude of the first corrected signal different from a ratio of the amplitude of the second detection signal to the amplitude of the first detection signal.
G01D 5/244 - Mechanical means for transferring the output of a sensing memberMeans for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for convertingTransducers not specially adapted for a specific variable using electric or magnetic means influencing characteristics of pulses or pulse trainsMechanical means for transferring the output of a sensing memberMeans for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for convertingTransducers not specially adapted for a specific variable using electric or magnetic means generating pulses or pulse trains
3.
OPTICAL DEVICE, INTEGRATED OPTICAL DEVICE, AND METHOD OF MANUFACTURING OPTICAL DEVICE
An optical device includes: a substrate; a waveguide layer that is provided on the substrate, and that includes an optical waveguide including an incident port on which light from outside becomes incident and an exit port from which the light emerges outside, the optical waveguide propagating the light from the incident port to the exit port; and a protection layer that is provided on the waveguide layer, in which, among peripheral surfaces of a stack of the substrate, the waveguide layer, and the protection layer, a first side surface having neither the incident port nor the exit port has a surface roughness greater than a second side surface having the incident port or the exit port.
G02B 6/122 - Basic optical elements, e.g. light-guiding paths
G02B 6/12 - Light guidesStructural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type of the integrated circuit kind
A reservoir computing device includes an input unit, a physical reservoir, and an output unit. The physical reservoir is connected to the input unit and the output unit. The physical reservoir is an element configured to perform nonlinear conversion of an input signal from the input unit and output it to the output unit as an output signal. The input unit includes a conversion unit that converts an external signal. The output unit is configured to be able to apply a weight to the output signal. The conversion unit is configured to be able to convert the external signal into a converted signal so that dependency between the output signal and a teacher signal is higher than dependency between the output signal and a teacher signal when the external signal is directly input to the physical reservoir.
This magnetoresistance effect element includes a laminate, a first wiring, and a second wiring. The laminate includes a spin-orbit torque wiring, a first ferromagnetic layer, a nonmagnetic layer, and a second ferromagnetic layer. A side surface of the laminate is a continuous inclined surface. The first ferromagnetic layer is between the spin-orbit torque wiring and the nonmagnetic layer in a lamination direction of the laminate. The nonmagnetic layer is between the first ferromagnetic layer and the second ferromagnetic layer in the lamination. The first wiring is connected to the spin-orbit torque wiring. The second wiring is connected to the spin-orbit torque wiring at a position different from that of the first wiring in a first direction. A first end surface of the first wiring on a side close to the spin-orbit torque wiring is inward of a first end of the spin-orbit torque wiring in the first direction.
A multilayer ceramic electronic component includes a first internal electrode layer and a second internal electrode layer. At least one of the first internal electrode layer and the second internal electrode layer includes a floating electrode. An insulating layer includes a main component containing a perovskite-type compound and also includes a subcomponent. The perovskite-type compound contains at least Ca as an A-site element and at least Zr as a B-site element. The subcomponent contains at least one selected from the group consisting of V, Nb, Ta, and W as a first subcomponent element. A total content of the first subcomponent element is 0.005 parts by mol or more and 0.80 parts by mol or less per 100 parts by mol of B-site elements.
A dielectric ceramic composition includes main phase grains and a grain boundary. The main phase grains contain a perovskite-type compound containing at least Ca and Zr. The dielectric ceramic composition contains at least one selected from the group consisting of V, Nb, Ta, and W as Z1. The total content of Z1 is 0.005 parts by mole or more and 1.2 parts by mole or less. At least a part of the main phase grains is composed of specific main phase grains. Each of the specific main phase grains includes a first microscopic region and a second microscopic region, at least a part of the first microscopic region is located at an outer peripheral portion, at least a part of the second microscopic region is located at a central portion, and a content of Z1 in the second microscopic region is lower than that in the first microscopic region.
An electromagnetic wave sensor comprises a first wiring that extends in a first direction, two second wirings that are separated by an interspace in the first direction and that extend in a second direction that is different from the first direction, and a bolometer. The bolometer includes electrodes. The first wiring is positioned on a side where electromagnetic waves to be measured are incident, relative to the bolometer. The position of the bolometer in a third direction that is orthogonal to the first direction and the second direction is between the position of the first wiring in the third direction and the position of the second wirings in the third direction. When viewed from the third direction, at least a part of the electrodes overlaps the interspace, and the bolometer overlaps the two second wirings.
G01J 5/24 - Use of specially adapted circuits, e.g. bridge circuits
G01J 5/20 - Radiation pyrometry, e.g. infrared or optical thermometry using electric radiation detectors using resistors, thermistors or semiconductors sensitive to radiation, e.g. photoconductive devices
H10F 30/10 - Individual radiation-sensitive semiconductor devices in which radiation controls the flow of current through the devices, e.g. photodetectors the devices being sensitive to infrared radiation, visible or ultraviolet radiation, and having no potential barriers, e.g. photoresistors
A multilayer electronic device includes an element body including internal electrode layers and dielectric layers, which are alternately laminated along a third axis direction and are substantially parallel to a plane containing a first axis and a second axis. The element body includes side surfaces facing each other in the first axis direction and each being provided with an insulating layer. The internal electrode layers include an internal electrode overlapping portion, which includes an overlapping portion side edge at either end in the first axis direction, and an internal electrode lead-out portion, which includes a lead-out portion side edge at either end in the first axis direction. The overlapping portion side edge includes an overlapping portion side edge central part at a center in the second axis direction. At least one of the internal electrode layers has larger irregularities along the second axis direction at the lead-out portion side edge than at the overlapping portion side edge central part.
H01G 13/00 - Apparatus specially adapted for manufacturing capacitorsProcesses specially adapted for manufacturing capacitors not provided for in groups
10.
MULTILAYER ELECTRONIC DEVICE AND METHOD OF MANUFACTURING THE SAME
A multilayer electronic device includes an element body including internal electrode layers and dielectric layers, which are alternately laminated along a direction of a third axis and are substantially parallel to a plane containing a first axis and a second axis. The element body includes side surfaces in pairs provided with respective insulating layers. The side surfaces face each other in a direction of the first axis. The element body includes end surfaces in pairs with respective external electrodes electrically connected to the internal electrode layers. The end surfaces face each other in a direction of the second axis. At least some of the internal electrode layers adjacent to each other in the direction of the third axis have grooves at respective boundaries between the at least some of the internal electrode layers and the insulating layers. The grooves are aligned along the direction of the third axis.
A multilayer electronic device includes an element body and insulating layers. The element body includes an interior region including inner dielectric layers and internal electrode layers, which are alternately laminated along a direction of a third axis, and exterior regions disposed at both sides outward from the interior region in the direction of the third axis. The insulating layers are provided on respective side surfaces of the element body. The interior region includes a central region and an end region in a predetermined section of the element body cut parallel to a first axis and the third axis. At least one of the internal electrode layers included in the end region has a width along a direction of the first axis smaller by 1 μm or more than an average width of the internal electrode layers included in the central region, in the predetermined section.
This optical coupling element assembly includes a plurality of laser light sources mounted on a subcarrier, a lens unit in which lenses are arranged side by side, and a prism unit formed by integrally combining a plurality of prisms. The subcarrier and the lens unit are bonded. The lens unit and the prism unit are bonded. Each of the prisms includes an inclined surface which reflects and/or transmits a laser light ray and the prisms are arranged parallel to each other such that the laser light rays reflected and/or transmitted are coupled into a single laser light ray.
A lithium ion secondary battery (100) comprises a positive electrode (20), a negative electrode (30), a separator (10) between the positive electrode (20) and the negative electrode (30), and a non-aqueous electrolyte solution. The density of a positive electrode active material layer (24) of the positive electrode (20) is 3.0 g/cm3to 3.6 g/cm3. A positive electrode active material layer (24) includes single crystal particles and polycrystalline particles. The single crystal particles and the polycrystalline particles each include Ni and one or both of Co and Mn. The non-aqueous electrolyte solution includes lithium hexafluorophosphate and lithium difluorophosphate.
H01M 4/131 - Electrodes based on mixed oxides or hydroxides, or on mixtures of oxides or hydroxides, e.g. LiCoOx
H01M 4/505 - Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese of mixed oxides or hydroxides containing manganese for inserting or intercalating light metals, e.g. LiMn2O4 or LiMn2OxFy
H01M 4/525 - Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron of mixed oxides or hydroxides containing iron, cobalt or nickel for inserting or intercalating light metals, e.g. LiNiO2, LiCoO2 or LiCoOxFy
H01M 10/0567 - Liquid materials characterised by the additives
H01M 10/0568 - Liquid materials characterised by the solutes
14.
INFORMATION PROCESSING DEVICE, ELECTROMAGNETIC WAVE TESTING DEVICE, PROGRAM, AND ELECTROMAGNETIC WAVE TESTING SYSTEM
Provided is an information processing device that causes an electromagnetic wave testing device including a reflection box to carry out a plurality of types of electromagnetic wave tests. When a first application that causes the electromagnetic wave testing device to carry out a first test from among the plurality of types of electromagnetic wave tests is executed, the information processing device displays a first operation acceptance image for accepting an operation from a user of the first application, and, in accordance with the operation accepted via the first operation acceptance image, sets, as first settings relating to an apparatus to be used for measurement in the first test from among settings set for the first application, at least a portion of second reference settings from among settings set for a second application that causes the electromagnetic wave testing device to carry out a second test different from the first test from among the plurality of types of electromagnetic wave tests, said second reference settings serving as a reference for second settings relating to an apparatus to be used for measurement in the second test.
This information processing device causes an electromagnetic wave testing apparatus including a reflection box to perform a plurality of types of electromagnetic wave tests. Upon execution of a first application for causing the electromagnetic wave testing apparatus to perform a first test among the plurality of types of electromagnetic wave tests, the information processing device causes the electromagnetic wave testing apparatus to display a first operation reception image for receiving, from a user, an operation for the first application. The first operation reception image includes a first image for receiving an operation for displaying a first setting reception image for receiving a first setting related to an instrument for use in measurement of the first test among settings set for the first application, and a second image for receiving an operation for designating whether or not to set, as the first setting, a first reference setting serving as a reference for the first setting.
When a predetermined first operation is received, this information processing device performs calibration test processing for performing a calibration test of an electromagnetic wave testing device including a reflection box in a state where a power-off specimen is placed in the reflection box, and then performs electromagnetic wave test processing for performing an electromagnetic wave test on the specimen by the electromagnetic wave testing device in a state where the power-on specimen is placed in the reflection box.
[Problem] To enhance detection accuracy of a magnetic sensor in which permalloy is used as a material for a soft magnetic thin film. [Solution] A magnetic sensor 1 comprises: soft magnetic thin films M1, M2 which are composed of a NiFe alloy and arranged in the X direction and have interposed therebetween a magnetic gap G1 in which the width direction is the X direction; and a magnetic sensing element R1 which is positioned on a magnetic path formed from the magnetic gap G1 and in which the magnetic sensing direction is the X direction. The soft magnetic thin films M1, M2 have magnetic anisotropy in which the hard axis is the X direction. As a result, it is possible to ensure linearity between a magnetic field that is present in a detection target space and a magnetic field that is actually applied to the magnetic sensing element.
A motor device according to one embodiment of the present disclosure comprises: a shaft that is rotatable about the rotation axis; a rotor that is connected to the shaft, is rotatable in the circumferential direction of the shaft, and has a first magnetic core and a first motor winding; a stator that surrounds the rotor in a plane intersecting the rotation axis and has a second magnetic core and a second motor winding; a first winding; and a second winding. The first magnetic core has a first magnetic core portion provided in an inner circumferential portion of the shaft in the radial direction at a first end portion in a first direction along the axial direction of the shaft. The first winding is wound on the outside of the first magnetic core portion in the circumferential direction of the shaft. The second magnetic core has a second magnetic core portion provided so as to extend from an outer circumferential portion of the shaft in the radial direction at a second end portion in the first direction toward the first magnetic core portion of the first magnetic core. The second winding is provided in the second magnetic core portion.
H02K 19/12 - Synchronous motors for multi-phase current characterised by the arrangement of exciting windings, e.g. for self-excitation, compounding or pole-changing
An electromagnetic wave sensor comprises first wirings that extend in a first direction, second wirings that extend in a second direction, and bolometers. The thermal resistance of the second wiring per unit length in a direction of extension of the second wirings is lower than the thermal resistance of the first wirings per unit length in a direction of extension of the first wirings. One bolometer is physically connected to a first bolometer adjacent to the one bolometer in the first direction via one first wiring, physically connected to a second bolometer adjacent to the one bolometer in the second direction via one second wiring, and physically connected to the first bolometer via another second wiring adjacent to the one second wiring in the first direction.
G01J 5/20 - Radiation pyrometry, e.g. infrared or optical thermometry using electric radiation detectors using resistors, thermistors or semiconductors sensitive to radiation, e.g. photoconductive devices
A multilayer ceramic electronic device includes an element body including a dielectric layer and an inner electrode layer laminated on the dielectric layer. The dielectric layer includes main phase grains. The element body includes a segregation. The main phase grains contain a perovskite-type compound expressed by the composition formula of (Ca1-x-pSrxBap)m(Zr1-y-zTiyHfz)O3 as a main component based on the number of atoms. The values x, p, m, y, and z are within a predetermined range. The main phase grains further contain an oxide of Z. Z includes at least one selected from the group consisting of V, Nb, Ta, and W. The segregation contains at least L, Mn, Si, and O. L includes at least one selected from the group consisting of Ca and Sr. A content ratio of Z in the main phase grains is larger than a content ratio of Z in the segregation.
C04B 35/48 - Shaped ceramic products characterised by their compositionCeramic compositionsProcessing powders of inorganic compounds preparatory to the manufacturing of ceramic products based on oxides based on zirconium or hafnium oxides or zirconates or hafnates
B32B 15/04 - Layered products essentially comprising metal comprising metal as the main or only constituent of a layer, next to another layer of a specific substance
C04B 37/00 - Joining burned ceramic articles with other burned ceramic articles or other articles by heating
A light-emitting module includes: a carrier; a laser diode fixed to one surface of the carrier; and a temperature detecting unit that is formed on the one surface and includes a unit pattern including a first wiring extending in a first direction away from the laser diode in a planar direction of the one surface and a second wiring connected to the first wiring, extending in a second direction perpendicular to the first direction, and having a length in the second direction being longer than a length of the first wiring in the first direction.
An electric power transmission device according to one embodiment of the invention includes a magnetic core, a first winding, a rotary member, a second winding, and one or more rectifiers. The magnetic core has a ring shape including a through hole through which a shaft extends. The magnetic core includes therein a cavity along a circumferential direction about an axis of rotation of the shaft, and has an opening provided along the circumferential direction in a surface, of the magnetic core, that is in contact with the through hole. The opening couples the through hole and the cavity to each other. The first winding is provided in the cavity and wound along the circumferential direction. The rotary member is provided at a location corresponding to the opening in an axial direction of the axis of rotation, and is rotationally movable in the circumferential direction, inside the cavity, with a rotation of the shaft. The second winding is provided on the rotary member and wound along the circumferential direction. The one or more rectifiers are provided on the rotary member and coupled to the second winding.
This magnetoresistance effect element has a laminate, a first wiring, a second wiring, a first via wiring, and a second via wiring. The laminate has a spin-orbit torque wiring, a first ferromagnetic layer, a nonmagnetic layer, and a second ferromagnetic layer. The first wiring and the second wiring are connected to the spin-orbit torque wiring. A gap between the first wiring and the second wiring is constant on surfaces where the spin-orbit torque wiring is connected to the first wiring and the second wiring. The first via wiring is connected to the first wiring, and the second via wiring is connected to the second wiring. The gap between the first wiring and the second wiring is shorter than a long axis length of the laminate.
G11C 5/08 - Arrangements for interconnecting storage elements electrically, e.g. by wiring for interconnecting magnetic elements, e.g. toroidal cores
G11C 11/16 - Digital stores characterised by the use of particular electric or magnetic storage elementsStorage elements therefor using magnetic elements using elements in which the storage effect is based on magnetic spin effect
A multilayer coil component includes an element body including a plurality of magnetic layers laminated in a first direction, and a coil having a coil axis along the first direction and disposed inside the element body. The coil includes a plurality of coil conductors arranged in the first direction and directly connected to each other. The plurality of coil conductors have a first coil conductor and a second coil conductor adjacent to each other in the first direction. When viewed from the first direction, a first circumferential angle at which the first coil conductor extends around the coil axis is equal to a second circumferential angle at which the second coil conductor extends around the coil axis.
A reservoir computing device includes an input unit, a physical reservoir, an evaluation selection unit, and an output unit. The input unit includes a conversion unit that converts an external signal into a converted signal. The evaluation selection unit is configured to obtain a first dependency between the input signal input to the physical reservoir and the output signal output from each of the plurality of nodes of the physical reservoir, and to be able to select one or more selected nodes that exhibit a dependency satisfying a predetermined criterion from among the first dependencies. The output unit is configured to be able to apply a weight to an extracted signal from the selected node among the output signals.
A soft magnetic powder and a magnetic body each include a large-diameter metal powder, a small-diameter metal powder, and a ferrite powder. The large-diameter metal powder includes large-diameter powder particles having a particle size of 1.0 μm or more. The small-diameter metal powder includes small-diameter powder particles having a particle size of less than 1.0 μm. The ferrite powder includes ferrite powder particles having a particle size of 1.0 μm or more. The ferrite powder includes a Ni-based ferrite powder. A soft magnetic alloy powder having a composition represented by the composition formula (Fe1-pX1p)100−(a+b+c+d+e)BaPbSicCdX2e in atomic ratio.
H01F 1/36 - Magnets or magnetic bodies characterised by the magnetic materials thereforSelection of materials for their magnetic properties of inorganic materials characterised by their coercivity of soft-magnetic materials non-metallic substances, e.g. ferrites in the form of particles
B22F 1/00 - Metallic powderTreatment of metallic powder, e.g. to facilitate working or to improve properties
B22F 1/052 - Metallic powder characterised by the size or surface area of the particles characterised by a mixture of particles of different sizes or by the particle size distribution
H01F 1/34 - Magnets or magnetic bodies characterised by the magnetic materials thereforSelection of materials for their magnetic properties of inorganic materials characterised by their coercivity of soft-magnetic materials non-metallic substances, e.g. ferrites
An electronic component includes a first signal terminal, a second signal terminal, a ground terminal connected to a ground, a resonator provided between a path from the first signal terminal to the second signal terminal and the ground in a circuit configuration, and a connection conductor that includes a plurality of columnar conductors arrayed in parallel to each other and a conductor layer connected to the plurality of columnar conductors, and connects the resonator to the ground terminal.
A dielectric ceramic composition contains a perovskite-type compound represented by the composition formula (Ca1-x-pSrxBap)m(Zr1-y-zTiyHfz)O3. The values x, p, m, y, and z are within a predetermined range. The dielectric ceramic composition contains Al, Si, Z, and at least one selected from the group consisting of Mn and Mg. Z includes at least one selected from the group consisting of V, Nb, Ta, and W. A content of Al is 0.01 parts by mole or more and 1.00 part by mole or less in terms of Al2O3, a content of Si is 0.08 parts by mole or more and 4.0 parts by mole or less in terms of SiO2, the total content of Mn and Mg is 0.10 parts by mole or more and 5.0 parts by mole or less, and the total content of Z is 0.005 parts by mole or more and 0.80 parts by mole or less.
C04B 35/49 - Shaped ceramic products characterised by their compositionCeramic compositionsProcessing powders of inorganic compounds preparatory to the manufacturing of ceramic products based on oxides based on zirconium or hafnium oxides or zirconates or hafnates containing also titanium oxide or titanates
This electrode terminal is provided with a metal lead (11), a plurality of electrode tabs (12), and a metal foil (13). The plurality of electrode tabs (12) are joined to each other. The metal lead (11) is joined to a first electrode tab (12A) among the plurality of electrode tabs (12). The metal foil (13) is joined, at a position where the plurality of electrode tabs (12) are joined to each other, to a second electrode tab (12B) on the opposite side from the first electrode tab (12A) among the plurality of electrode tabs (12).
H01M 4/13 - Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulatorsProcesses of manufacture thereof
H01M 4/58 - Selection of substances as active materials, active masses, active liquids of inorganic compounds other than oxides or hydroxides, e.g. sulfides, selenides, tellurides, halogenides or LiCoFySelection of substances as active materials, active masses, active liquids of polyanionic structures, e.g. phosphates, silicates or borates
H01M 4/62 - Selection of inactive substances as ingredients for active masses, e.g. binders, fillers
H01M 4/505 - Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese of mixed oxides or hydroxides containing manganese for inserting or intercalating light metals, e.g. LiMn2O4 or LiMn2OxFy
H01M 4/525 - Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron of mixed oxides or hydroxides containing iron, cobalt or nickel for inserting or intercalating light metals, e.g. LiNiO2, LiCoO2 or LiCoOxFy
This positive electrode for a lithium-ion secondary battery comprises a positive electrode current collector and a positive electrode active material layer in contact with the positive electrode current collector. The positive electrode active material layer has a positive electrode active material and an aqueous binder. In an image obtained by photographing, with a scanning electron microscope, a peeled surface obtained by peeling a surface layer of a first surface of the positive electrode active material layer on the side opposite to the surface in contact with the positive electrode current collector, the proportion of the positive electrode active material is 40-80%, inclusive.
H01M 4/38 - Selection of substances as active materials, active masses, active liquids of elements or alloys
H01B 1/06 - Conductors or conductive bodies characterised by the conductive materialsSelection of materials as conductors mainly consisting of other non-metallic substances
H01M 4/134 - Electrodes based on metals, Si or alloys
H01M 4/36 - Selection of substances as active materials, active masses, active liquids
A through-hole electrode substrate includes a substrate including a first surface and a second surface on a side opposite to the first surface, at least one electrode extending from the first surface to the second surface, and an insulating film including a first part extending along the at least one electrode and contacting with the at least one electrode, a second part extending along the first part and being adjacent to the first part, and a boundary surface between the first part and the second part.
The laser module 1000 includes, in a package 110, a plurality of subcarriers 20, a plurality of laser elements 30 mounted on the main surfaces of the plurality of subcarriers 20, and an optical waveguide substrate 40 having an optical waveguide layer 50 on its main surface, the optical waveguide layer 50 having an optical waveguide 51 for guiding the laser light respectively emitted from the plurality of laser elements 30. A getter material 60 for adsorbing volatile organic compounds is disposed on the upper surface of the optical waveguide layer 50 near the incident surface of the optical waveguide layer 50 where the laser light is incident.
This magnetic array includes a plurality of memristors and a pulse application device. The pulse application device is configured to be capable of applying, as write pulses, a magnetic domain wall driving pulse and a mode change pulse to at least one of the plurality of memristors. In a process of updating a conductance, the pulse application device is configured to be capable of determining whether or not application of the mode change pulse is necessary based on the conductance of a laminate before updating and the conductance of the laminate after updating. The mode change pulse has a longer pulse length than the magnetic domain wall driving pulse. In one process of updating the conductance, the number of times of application of the mode change pulse is equal to or smaller than the number of times of application of the magnetic domain wall driving pulse.
G11C 11/16 - Digital stores characterised by the use of particular electric or magnetic storage elementsStorage elements therefor using magnetic elements using elements in which the storage effect is based on magnetic spin effect
H01F 7/06 - ElectromagnetsActuators including electromagnets
H10B 61/00 - Magnetic memory devices, e.g. magnetoresistive RAM [MRAM] devices
A hollow shaft is formed of a ferromagnetic body, and holds a refrigerant at an inner circumferential side. A magnet is positioned at an outer circumferential side of the hollow shaft, and includes N pole and S pole adjacent in a circumferential direction of the hollow shaft. A magnetic sensor detects a magnetic field of the magnet. The hollow shaft and the magnet are configured so that a first function relating to a shape and characteristics of the hollow shaft and a second function relating to a shape and characteristics of the magnet satisfy a condition for reducing a leakage magnetic field from the magnet from the outer circumferential side to the inner circumferential side of the hollow shaft.
G01R 33/00 - Arrangements or instruments for measuring magnetic variables
G01R 33/038 - Measuring direction or magnitude of magnetic fields or magnetic flux using permanent magnets, e.g. balances, torsion devices
H02K 1/32 - Rotating parts of the magnetic circuit with channels or ducts for flow of cooling medium
H02K 7/00 - Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
An magnetoresistive element includes: a first magnetic layer; a second magnetic layer whose magnetization direction changes according to an external magnetic field; a spacer layer arranged between the first magnetic layer and the second magnetic layer; and an antiferromagnetic layer arranged on a side of the first magnetic layer opposite to the spacer layer, the first magnetic layer being magnetized to include a component in a perpendicular direction orthogonal to an in-plane direction, the first magnetic layer including a stack structure in which a stack of a first metal layer and a second metal layer stacked together is repeatedly stacked, a specific metal layer of the first metal layers being formed with a composition different from a composition of another metal layer that is not in contact with the antiferromagnetic layer.
A magnetic sensor includes a first magnetoresistive (MR) element, a second MR element, and a third MR element. The magnetization of a magnetization pinned layer of each of the first, second, and third MR elements includes a component in a first direction. The second MR element is arranged at a first interval from the first MR element in the first direction. The third MR element is arranged at a second interval from the first MR element in a second direction. The first interval is at least 0.5 times D and at most 3 times D, where D is the maximum dimension of at least one of the first, the second, and the third MR elements.
An electronic component includes a ceramic body, a pair of electrodes disposed on the ceramic body, a pair of metal terminals respectively connected to the pair of electrodes, and an exterior body. The exterior body covers the ceramic body, the pair of electrodes, and a part of each of the pair of metal terminals. The ceramic body is inclined relative to a plane including respective positions on a surface of the exterior body at which the pair of metal terminals are exposed.
A ceramic body is located closer to a fourth main surface than a position on a first side surface at which a first metal terminal is exposed and a position on a second side surface at which a second metal terminal is exposed, in a direction in which a third main surface and the fourth main surface oppose each other. The ceramic body and the first outer portion do not overlap each other in a view from a side of the first side surface in a direction perpendicular to the direction in which the third and fourth main surfaces oppose each other. The ceramic body and the second outer portion do not overlap each other in a view from a side of the second side surface in a direction perpendicular to the direction in which the third and fourth main surfaces oppose each other.
A light detection element includes a first magnetic element and a second magnetic element, a first lens that irradiates incident light to the first magnetic element, and a second lens that irradiates incident light to the second magnetic element. The first lens and the second lens are made of metalenses having a plurality of nanostructures arranged two-dimensionally. In order to make the phases at the focal points of the first lens and the second lens different from each other, the size of the plurality of nanostructures in the first lens decreases as the distance from the optical center of the first lens increases in a predetermined region determined according to the distance from the optical center, and the size of the plurality of nanostructures in the second lens decreases as the distance from the optical center increases in a predetermined region determined according to the distance from the optical center.
An electronic component includes: an element body having a pair of end surfaces facing each other in a first direction, a pair of main surfaces facing each other in a second direction, and a pair of side surfaces facing each other in a third direction; a pair of side electrodes disposed on the pair of side surfaces, respectively, and connected to a ground; and a resonator disposed in the element body, in which a length of the element body in the first direction is longer than a length of the element body in the third direction, the resonator includes a conductor extending in the second direction, and a length of the conductor in the first direction is longer than a length of the conductor in the third direction, as viewed from the second direction.
To prevent deterioration in an extinction ratio due to asymmetry between a pair of optical waveguides. An optical modulator has a Mach-Zehnder optical waveguide including mutually parallel first and second waveguides and a signal electrode for controlling the phase of light propagating in the Mach-Zehnder optical waveguide. The first and second waveguides have a first section in which the second waveguide has a line width smaller than that of the first waveguide and a second section in which the first waveguide has a line width smaller than that of the second waveguide. The first section and the second section are replaced with each other in curved parts.
G02F 1/225 - Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulatingNon-linear optics for the control of the intensity, phase, polarisation or colour by interference in an optical waveguide structure
G02F 1/035 - Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulatingNon-linear optics for the control of the intensity, phase, polarisation or colour based on ceramics or electro-optical crystals, e.g. exhibiting Pockels or Kerr effect in an optical waveguide structure
G02F 1/21 - Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulatingNon-linear optics for the control of the intensity, phase, polarisation or colour by interference
A magnetic core having a high relative permeability is obtained.
A magnetic core having a high relative permeability is obtained.
The magnetic core contains soft magnetic metal powder particles. In a cross section of the magnetic core, a number ratio of soft magnetic metal powder particles having a circularity of less than 0.50 to a total number of soft magnetic metal powder particles having a particle size of 10 μm or more and less than 50 μm is 0.05% or more and 1.50% or less.
A battery includes a container, and an electrode group housed in the container together with an alkaline electrolyte solution, the electrode group includes an air electrode and a negative electrode stacked with a separator interposed therebetween, the air electrode 1 includes a core and an air electrode mixture, the air electrode mixture contains an oxygen catalyst and a manganese compound, and the separator is a composite formed by laminating a microporous membrane and a nonwoven fabric in a thickness direction.
H01M 50/454 - Separators, membranes or diaphragms characterised by the material having a layered structure comprising a non-fibrous layer and a fibrous layer superimposed on one another
A transfer apparatus includes a frame and a head fixed to the frame and configured to transfer a target. The frame includes an upper body provided with the head and curved in an arch shape toward a direction opposite a gravity direction.
A wiring conductor includes a main body portion. The main body portion includes a first surface and a second surface connecting both edges of the first surface. The second surface is a curved surface, and the aspect ratio that is a ratio of a height of the main body portion from the first surface to a width of the first surface is 0.4 to 1.4.
H01B 1/02 - Conductors or conductive bodies characterised by the conductive materialsSelection of materials as conductors mainly consisting of metals or alloys
H01F 27/30 - Fastening or clamping coils, windings, or parts thereof togetherFastening or mounting coils or windings on core, casing, or other support
A power transmission device according to one embodiment of the present disclosure comprises: a shaft; a stator having a first winding wound in a circumferential direction of the shaft; a rotor connected to the shaft, rotatable in the circumferential direction of the shaft, and having a second winding wound an integer number of times in the circumferential direction of the shaft, the second winding including a first terminal provided at one end and a second terminal provided at the other end; and a rotating body connected to the shaft and rotatable in the circumferential direction of the shaft. The rotating body has: a substrate that extends in a plane intersecting the shaft; a first connection terminal and a second connection terminal that are respectively led to the first terminal and the second terminal, and that are provided on the substrate at positions opposite to each other across the shaft; a rectifier circuit that is provided on the substrate, and that is capable of performing a rectification operation on the basis of AC power supplied to the first connection terminal and the second connection terminal; and a conductor member that is provided in a path connecting the first terminal and the first connection terminal, and that extends in a direction intersecting an axial direction of the shaft.
An information processing device according to an embodiment comprises: a signal splitting unit that splits an input signal of a cardiac measurement waveform at a splitting point between an R-wave peak point and a T-wave peak point; a curved line approximation unit that performs curved line approximation on each signal portion split by the signal splitting unit; and a fitting evaluation unit that evaluates fitting of the curved line approximation performed by the curved line approximation unit. The splitting point at which a result of the evaluation by the fitting evaluation unit satisfies a prescribed condition is set as an approximate J-point.
A61B 5/243 - Detecting biomagnetic fields, e.g. magnetic fields produced by bioelectric currents specially adapted for magnetocardiographic [MCG] signals
A control system according to the present embodiment includes a control controller and an arithmetic unit including a model to be controlled. The control controller includes a reservoir. An output from the reservoir is configured to be input to each of a system to be controlled and the arithmetic unit. The model to be controlled is obtained by modeling the system to be controlled. The coupling coefficient of the reservoir is configured to be updated so as to minimize a deviation between an output value from the model to be controlled and a target value.
G05B 13/02 - Adaptive control systems, i.e. systems automatically adjusting themselves to have a performance which is optimum according to some preassigned criterion electric
G06N 3/044 - Recurrent networks, e.g. Hopfield networks
51.
NEGATIVE ELECTRODE ACTIVE MATERIAL, NEGATIVE ELECTRODE FOR LITHIUM ION SECONDARY BATTERY, AND LITHIUM ION SECONDARY BATTERY
This negative electrode active material comprises composite particles and carbon nanotubes. The composite particles include a plurality of carbonaceous particles and a plurality of silicon particles. The plurality of carbonaceous particles and the plurality of silicon particles are amorphous. The average primary particle size of the plurality of silicon particles is 1-50 nm. The carbon nanotubes connect at least two carbonaceous particles among the plurality of carbonaceous particles on the surfaces of the composite particles.
Provided is a magnetic component comprising a magnetic element body. The magnetic element body contains Fe. At least one surface of the magnetic element body is a specific surface including at least one terminal electrode. At least a part of the specific surface is covered with an insulating film. At least a part of a portion of the specific surface not covered with the insulating film is a Cu-containing portion that comes into contact with the terminal electrode. The terminal electrode includes a Cu plating layer. The insulating film contains a metal phosphate containing phosphoric acid, a metal element having a larger ionization tendency than that of Fe, and Fe.
An electric power conversion apparatus includes: two input terminals; two output terminals; a transformer; an inverter circuit including first and second main switches and first and second clamp switches, a clamp capacitor, and first and second coupling lines; a rectifying circuit; a smoothing circuit; and a control circuit. In the inverter circuit, the first main switch and the first clamp switch are disposed on the first coupling line in series and in this order; the second main switch and the second clamp switch are disposed on the second coupling line in series and in an order reverse to that on the first coupling line; and the clamp capacitor is disposed on a first or second end side of the first clamp switch on the first coupling line, or disposed on a first or second end side of the second clamp switch on the second coupling line.
H02M 3/335 - Conversion of DC power input into DC power output with intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate AC using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only
H02M 3/00 - Conversion of DC power input into DC power output
A magnetic sensor comprises a magnetic body and a first magnetic field sensing element that has a magnetic field sensing direction in a first direction. In the first direction, the center of the magnetic body is at a position different from the center of the first magnetic field sensing element. The magnetic body is located apart from the first magnetic field sensing element in a second direction which is the direction of thickness of the first magnetic field sensing element. The magnetic body includes a soft magnetic layer and a first fixed magnetization portion whose magnetization direction is fixed with respect to an external magnetic field. In a plan view from a third direction that is orthogonal to each of the first and second directions, the first fixed magnetization portion is closer to the first magnetic field sensing element than is the center of the magnetic body.
A magnetic sensor system includes: magnetic field generator including first and second part aligned in first direction; magnetic sensor configured to detect magnetic field generated by magnetic field generator at detection position. Magnetic field generator and magnetic sensor are configured such that relative position of magnetic field generator with respect to magnetic sensor changes in direction parallel to first direction. Magnetic sensor is configured to generate first and second detection signal that change in response to relative position and have phases different from each other, based on magnetic field. Magnetic field generator is configured such that distance between first position where first detection signal is a maximum value and second position where second detection signal is a maximum value is smaller than distance between center of first part and center of second part in first direction.
G01D 5/14 - Mechanical means for transferring the output of a sensing memberMeans for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for convertingTransducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage
G01D 5/16 - Mechanical means for transferring the output of a sensing memberMeans for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for convertingTransducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying resistance
A ceramic body includes first and second main surfaces opposing each other. A first connection portion of a first metal terminal includes a first region joined to a first electrode disposed on the first main surface, and a second region continuous with a first bridge portion. A second connection portion of a second metal terminal includes a third region that overlaps the first region as viewed from a direction in which the first and second main surfaces oppose each other and is joined to a second electrode disposed on the second main surface, and a fourth region continuous with a second bridge portion. The second region and the fourth region are located on opposite sides with the first and third regions interposed therebetween, as viewed from the direction in which the first and second main surfaces oppose each other.
An electronic component includes: an element body having a pair of end surfaces facing each other in a first direction, a pair of main surfaces facing each other in a second direction, and a pair of side surfaces facing each other in a third direction; and a first resonator, a second resonator, and a third resonator disposed in the element body, in which the first resonator has a first conductor extending in the second direction, the first conductor extends in a direction in which the first resonator, the second resonator, and the third resonator are arranged side by side as viewed from the second direction, and the first resonator is disposed between the second resonator and the third resonator.
H03H 5/00 - One-port networks comprising only passive electrical elements as network components
H03H 1/00 - Constructional details of impedance networks whose electrical mode of operation is not specified or applicable to more than one type of network
Each of first and second metal terminals includes an inner portion located inside an exterior body and an outer portion located outside the exterior body. The exterior body includes a main surface arranged to constitute a mounting surface, and first and second side surfaces that are adjacent to the main surface and oppose each other. A ceramic body is located on one side of a plane that includes a first position on the first side surface at which the first metal terminal is exposed and a second position on the second side surface at which the second metal terminal is exposed. The ceramic body and the outer portion of the first metal terminal are configured such that the ceramic body and the outer portion overlap each other in a view from a side of the first side surface in a direction parallel to the main surface and the plane.
A ceramic body includes first and second main surfaces opposing each other. A metal terminal is connected to an electrode disposed on the second main surface. An exterior body includes a third main surface arranged to constitute a mounting surface, and a fourth main surface opposing the third main surface. The metal terminal includes an inner portion located inside the exterior body, and an outer portion located outside the exterior body. The inner portion includes a connection portion connected to the second electrode, and a bridge portion bridging the connection portion and the outer portion. In a direction perpendicular to the third main surface, a first height position of an end of the outer portion closer to the fourth main surface is higher than a second height position of a position at which the connection portion and the bridge portion are connected to each other.
A light detection element includes a magnetic element having a first ferromagnetic layer, a second ferromagnetic layer, and a spacer layer sandwiched between the first and second ferromagnetic layers, and a main lens 21 and at least one sub-lens 22 that focus incident light to the magnetic element. The main lens and the sub-lens are metalenses 25 including a plurality of nanostructures 26. The planar size of the multiple nanostructures in the main lens decreases as the distance from the optical center of the main lens increases in each region determined according to the distance from the optical center of the main lens, and the planar size of the multiple nanostructures in the sub-lens decreases as the distance from the optical center of the sub-lens increases in each region determined according to the distance from the optical center of the sub-lens.
An electronic device, having: an element main body including; a multilayer body having an internal electrode layer and a dielectric layer, both being substantially parallel to a plane including a first axis and a second axis perpendicular to the first axis, and stacked along a direction of a third axis perpendicular to the plane including the first axis and the second axis, and a gap part formed toa side surface disposed at an end in a direction of the first axis of the multilayer body; and an external electrode electrically connected to the internal electrode layer; wherein a boundary part between the multilayer body and the gap part exposed on an end surface being disposed at an end in a direction of the second axis of the element main body is at least partially covered by an end surface covering part, an area ratio of the end surface covering part is between 20% or greater and 50% or less with respect to 100% of an area of the end surface, and the external electrode covers at least part of the end surface and at least part of the end surface covering part.
An extended portion of an electronic component includes a first rectangular portion, a second rectangular portion, and a coupling portion. The first rectangular portion is coupled to a first external electrode and has a rectangular shape. The second rectangular portion is coupled to a main body portion and has a rectangular shape. The coupling portion couples the first rectangular portion and the second rectangular portion. In a third direction intersecting first and second directions, the width of the first rectangular portion is smaller than the width of the main body portion. In the third direction, the width of the second rectangular portion is larger than the width of the first rectangular portion. The width of the coupling portion in the third direction is formed to be narrower toward the first rectangular portion.
The dry etching apparatus includes a rotatable sample stage on which a sample is mounted, an etching source for emitting an etching medium to the sample, and a shielding part provided at a position remote from the sample stage to block part of the emitted etching medium from reaching the sample.
A solid electrolytic capacitor according to one embodiment of the present disclosure may include a stacked body having a plurality of stacked solid electrolytic capacitor elements being stacked, a first side electrode arranged on a first side surface of the stacked body, and a second side electrode arranged on a second side surface of the stacked body. Each of the solid electrolytic capacitor elements may include an anode electrode layer, a dielectric layer, a cathode electrode layer, a solid electrolyte layer, and an insulating region arranged on the anode electrode layer and adjacent to a side of the solid electrolyte layer. The first distance between the anode electrode layer and the second side electrode may be smaller than the second distance between the insulating region and the second side electrode.
To provide a magnetic detection system capable of detecting a metallic foreign object with high sensitivity. A magnetic detection system includes: a signal generation circuit that generates an excitation signal; an excitation coil to which the excitation signal is supplied; a buffer circuit that is connected between the signal generation circuit and the excitation coil; magnetic sensors that are disposed on opposite sides of the excitation coil along the coil axis direction; a sample stage that holds a sample between the excitation coil and the first magnetic sensor; and a detection circuit that generates a detection signal based on the difference between output signals from the magnetic sensors. With this configuration, the buffer circuit suppresses waveform distortion of the excitation signal, thereby enabling detection of a metallic foreign object with high sensitivity.
A magnetoresistive device includes: a substrate; a first magnetoresistive effect element; a first layer sandwiched between the substrate and the first magnetoresistive effect element; and a second layer located at a position farther from the substrate than the first magnetoresistive effect element in a stacking direction. The first magnetoresistive effect element includes a stack, a spin-orbit torque wiring in contact with the stack, a first via wiring connected to the spin-orbit torque wiring, and a second via wiring connected to the spin-orbit torque wiring at a position different from the first via wiring. The stack includes a first ferromagnetic layer, a second ferromagnetic layer, and a non-magnetic layer sandwiched between the first ferromagnetic layer and the second ferromagnetic layer. The first layer or the second layer includes an insulating first magnetic layer.
G11C 11/16 - Digital stores characterised by the use of particular electric or magnetic storage elementsStorage elements therefor using magnetic elements using elements in which the storage effect is based on magnetic spin effect
H10B 61/00 - Magnetic memory devices, e.g. magnetoresistive RAM [MRAM] devices
Writer head products for heat-assisted magnetic recording devices and methods of making the same are disclosed. The writer heads include multiple layers including a waveguide blocking layer, a waveguide layer, a near-field transducer layer, a heat sink layer, and a peg layer. The peg layer may comprise a small triangular section that extends from an air-bearing surface into the optical component. The writer heads further include a main magnetic pole adjacent to the optical component.
G11B 5/31 - Structure or manufacture of heads, e.g. inductive using thin film
G11B 5/00 - Recording by magnetisation or demagnetisation of a record carrierReproducing by magnetic meansRecord carriers therefor
G11B 13/08 - Recording simultaneously or selectively by methods or means covered by different main groupsRecord carriers thereforReproducing simultaneously or selectively therefrom using near-field interactions or transducing means and at least one other method or means for recording or reproducing
68.
SIGNAL PROCESSING DEVICE, SIGNAL PROCESSING METHOD, AND NON-TRANSITORY RECORDING MEDIUM
A signal processing device according to an embodiment of the present invention comprises an arithmetic circuit capable of selecting first two or more pieces of data provided at a ratio of one to a predetermined number, from first input data that is time-series data, and capable of performing a first convolution operation on the basis of the selected first two or more pieces of data and first two or more pieces of coefficient data of the same number as the first two or more pieces of data.
G10K 11/178 - Methods or devices for protecting against, or for damping, noise or other acoustic waves in general using interference effectsMasking sound by electro-acoustically regenerating the original acoustic waves in anti-phase
[Problem] To provide an electronic component suitable for use when embedded in the interior of a circuit board. [Solution] An electronic component 10 is provided with: an element body 100 that comprises terminal surfaces 101, 102 located on mutually opposite sides; and conductor layers C0-C2 that are embedded in the element body, extend in the XY-plane direction, and are layered in the Z direction. The conductor layer C0 is the closest to the terminal surface 101, the conductor layer C2 is the closest to the terminal surface 102, and the conductor layer C1 is located between the conductor layer C0 and the conductor layer C2. The conductor layer C1 includes a coil conductor 111. The conductor layer C1 includes a terminal electrode 110 that is connected to one end of the coil conductor 111 and is exposed from the terminal surface 101. The conductor layer C2 includes a terminal electrode 112 that is connected to the other end of the coil conductor 111 and is exposed from the terminal surface 102.
09 - Scientific and electric apparatus and instruments
35 - Advertising and business services
36 - Financial, insurance and real estate services
42 - Scientific, technological and industrial services, research and design
Goods & Services
Capacitors; Multilayer Ceramic Chip Capacitors; Multilayer Capacitors; Ceramic Capacitors; Harmonic Filtering Components; Disc Type Capacitors with Lead; High Voltage Ceramic Capacitors; Multilayer Ceramic Chip Capacitors with Dipped Radial Lead; Ultra High Voltage Ceramic Capacitors; PLZT (lead lanthanum zirconate titanate) ceramic capacitors; 3-Terminal Feedthrough Capacitors; SMD (Surface Mounted Device) Inductors; SMT (Surface Mount Technology) Inductors; SMD (Surface Mounted Device) Coils; SMT (Surface Mount Technology) Coils; Surface Mount Inductors; Surface Mount Coils; Leaded Inductors; Leaded Coils; Transponder Coils; High Current Flat Wire Inductors; Coupled Inductors; PFC (Power Factor Correction) Choke Coils; Choke Coils; Power Inductors; EMC (Electromagnetic Compatibility) Components, namely, Chip Beads, Noise Suppression Filters, Noise Filters, ESD (Electrostatic Discharge) Notch Filters, 3-terminal Filters, Signal Line Common Mode Chokes, Signal Line Common Mode Filters, Common Mode Chokes, Common Mode Chokes Coils, Common Mode Filters, Power Line Common Mode Chokes, Power Line Common Mode Filters, Differential Mode Chokes, Clamp Filters, Ferrite Cores with Case, Feedthrough Capacitors, Feedthrough Filters, Power Line EMC Filters, EMC Filters, Active Leakage Current Filters that measure earth leakage currents, Current Filters, EMC (Electro Magnetic Compatibility) Reactors, Output Filters, LCL (Inductor-capacitor-inductor) Filters, Ferrites For EMC Suppression, Noise Suppression Sheets made of magnetic materials and resin, Power Line Chokes, High-Current Ring Core Chokes, D-Core Chokes, EMI (Electromagnetic Interference) Chokes,; Power EMC Filters, Automotive Filter, EMC (Electromagnetic Compatibility) Feedthrough Filters; RF (Radio Frequency) Components, namely, Filters for radio frequency suppression, Diplexers, Triplexers, Baluns, Directional Couplers, Signal dividers, Signal splitters, Chip Antennas; Signal isolators, Isolators whose function is to isolate and remove adverse current to protect circuits and stabilize their operation, Circulators, Antennas; Voltage Protection Devices, namely, Multilayer Chip Protectors; Temperature Protection sensors; Temperature Protection thermistors; Diodes; Ceramic Transient Voltage Suppressors; Varistors; Electrical surge arresters; Current Protection Thermistors; PTC (Positive Temperature Coefficient) Inrush Current Limiters; NTC (Negative Temperature Coefficient) Inrush Current Limiters; Temperature sensors; NTC (Negative Temperature Coefficient) Thermistors; PTC (Positive Temperature Coefficient) Thermistors; Liquid level sensors; Powder Level Sensors in toner for printers; Pressure Measurement Sensors; Humidity Sensors; Surface potential sensors for sensing the surface potential of charged drums; Printer toner Quantity Sensors; Stroke sensors for non-contact location tracking applications; Gear Tooth Sensors to measure gear rotations in motor vehicles and two-wheeled vehicles; Electric Current Sensors; Angle Measurement Sensors; Hall Effect Switches; Linear Hall Effect Sensors; Hall Effect Sensors; Motion sensors; Inertial Sensors; Vibration sensors; Inclinometers; TMR (Tunnel Magneto Resistance) Sensors; NTC (Negative Temperature Coefficient) Temperature Measurement Sensors; NTC (Negative Temperature Coefficient) Elements; NTC (Negative Temperature Coefficient) Sensor Assembly; NTC (Negative Temperature Coefficient); Sensors; Electric Motor Protection Sensors; Pressure sensors; Pressure Sensor Transmitters; Ultrasonic sensors; Clamp AC Current Sensors; Powder Level Sensors for sensing residual printer toner and residual powders thereon; Piezoelectric Printer Toner Sensors; Magnetic Printer Toner Density Sensors; Magnetic Printer Toner Quantity Sensors; Magnetic Printer Toner Sensors; Printer Toner Density Sensors; Printer Toner Sensors; MEMS (Microelectrical Mechanical Systems) Gyroscope Sensors; MEMS (Microelectrical Mechanical Systems) Accelerometers; Buzzers; Microphones; Piezo speakers; Piezoelectric Actuators; Electric actuators; MEMS Microphones; PTC Thermistors as Heating Elements; Multilayer Piezo Actuator Stacks; Apparatus for generating atmospheric pressure plasma; Control and regulating apparatus, electric, for use in relation to the following goods: Apparatus for generating atmospheric pressure plasma; Ozonisers [ozonators]; Chemical and Physical equipment, for use in the following fields: Production of atmospheric pressure plasma, All goods included in class Ozone generators for use in administering ozone therapy; Ozonizers [ozonators] for medical use; Electric apparatus for generating atmospheric-pressure plasma and low-pressure plasma; Electric control and regulating apparatus, and chemical and physical apparatus for generating low-pressure plasma using at least one piezoelectric element and for generating atmospheric-pressure plasma, included in class 9; High-Voltage Contactors; Switching Spark Gaps; Piezoelectric Buzzers; Electromagnetic Buzzers; Ultrasonic Nebulizer Units for scientific use; Transformers; Current Sense Transformers; Step-up Transformers; Pulse Transformers; Ferrite Cores; Noise Suppressing Sheets; Magnetic Sheets; Noise Suppression Shield in the form of magnetic sheets; NFC (Near Field Communication) Antennas Shield; Anechoic Chambers; Radio Wave Absorbers; Power Supplies; Switching power supplies; AC (alternating current) to DC (direct current) Power Supplies; DC (direct current) to DC (direct current) Converters; Programmable Power Supplies; High Voltage Power Supplies; Bidirectional DC (direct current) to DC (direct current) Converters; Programmable Electronic Loads; Embedded DC (direct current) to DC (direct current) Converters; Magnets; Ferrite Magnets; Neodymium Magnets; PCIe (Peripheral Component Interconnect express) solid state drives; Solid state drives; Computer Flash Memory chips and cards; CF (Compact Flash) Memory Card; NAND flash memories; Compact Flash memory card; SD (Secure Digital) Memory Cards; Micro SD (Secure Digital) memory cards; Memory cards; Flash memory controller, namely, the digital circuit that manages the reading and writing of data in NAND flash memory; Memory controller, namely, the digital circuit that manages the reading and writing of data in NAND flash memory; Wireless power coil units; Wireless power transfer units and modules; Wireless power transfer units and modules for the wireless charging of rechargeable batteries in electronic devices, batteries in industrial equipment, batteries in electric vehicles, batteries in wearable devices and batteries in medical devices; FOUP Load Port, namely, a station for supporting a semiconductor wafer transporting container where the cover of the transporting container is separated or separable from the transporting container; Transparent Conductive Film; Solar cells; HDD Heads; Magnetic heads for reading and reproducing data; Magnetic recording heads; Batteries; Electric batteries; Lithium-Ion Batteries; Rechargeable batteries; Rechargeable electric batteries; Solid-state batteries; ASIC (Application Specific Integrated Circuit); Microcontrollers; Micro modules comprising substrates with built-in ICs [integrated circuits]; Circuit boards; Electrical circuit boards; Printed circuit boards; Downloadable software for use in positioning systems for automotive, robotic, venue or personal applications; Positioning Software; Downloadable software for use in connection with machine learning applications; downloadable computer software, used in combination with artificial intelligence for use in predictive analytics, machine learning and automated model building in the field of equipment and system performance monitoring; Thermometers not for medical purposes; Aluminum Electrolytic Capacitors, namely, Capacitors with Screw Terminals, Snap-in, Multi Pin, Large Size Capacitors, Ultra-Compact Snap-in capacitors, Axial Capacitors, Hybrid Polymer Capacitors; Capacitors, Single-Ended (Radial) Capacitors; Film Capacitors, namely, Metallized Polyester Capacitors, Metallized Polypropylene Capacitors, EMI (Electromagnetic Interference) Suppression Capacitors, Power Capacitors; PFC (power factor correction) Components, namely, PFC (power factor correction) Capacitors; Harmonic Filtering Components, namely, MV (Medium Voltage) Surge Capacitors, Vacuum Contactors, Active Harmonic Filter, Power Optimizer, Static Var Generator, PFC (power factor correction) Controllers, Capacitor Contactors, Thyristors and thyristor switches, Grid analysis tool for measuring, displaying and storage of electric parameters in low-voltage grids; Optical image stabilization modules for use in cellphone cameras, digital cameras and tablet computers for stabilizing images to be captured via photography and video; Optical image stabilization actuators; Optical image stabilizers; Electronic circuits; Hard disk drive suspensions; Blank magnetic tapes; Blank magnetic discs; Blank magnetic optical disks; Blank optical disks; Blank compact discs, blank DVDs and other digital recording media; Earphones; Headphones; SAW (surface acoustic wave) components and modules; Software Product comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Downloadable Product comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Data storage device comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; CD, DVD, data-stick, etc. comprising software for advertising, business management,; business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Computer Systems comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Training material for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts],; software design and development, artificial intelligence, and technological consultancy.; Simulation tools for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing, artificial intelligence, and technological consultancy.; SATA (Serial Advanced Technology Attachment) solid state drives Advertising services; Business management, organization and administration; Office functions; Marketing research or analysis; Business management analysis or business consultancy; New business venture development and formation consulting services; Business consulting services for emerging and start-up companies; Business development services, namely, providing start-up support for businesses of others Capital investment; Venture capital funding services for companies; Venture capital funding services to emerging and start-up companies; Venture capital advisory services Designing of machines, apparatus, instruments [including their parts] or systems composed of such machines, apparatus and instruments; Design of integrated circuits; Technological advice relating to computers, automobiles and industrial machines; Consulting services in the field of product design and development; Testing services in the field of electrical engineering; Testing or research on machines, apparatus and instruments [including their parts]; Product testing; Computer software design, computer programming, or maintenance of computer software; Providing computer programs on data networks; Software as a service [SaaS]; Providing online nondownloadable computer software; Rental of computer software; Artificial intelligence as a service [AIaaS]; Technology consultation in the field of artificial intelligence (AI); Research in the field of artificial intelligence technology:; Computer software consultancy; Business technology software consultation services; Consulting services in the field of software as a service (SAAS); Consulting services in the field of providing online, non-downloadable software and applications; Consultation services relating to computer software
09 - Scientific and electric apparatus and instruments
35 - Advertising and business services
36 - Financial, insurance and real estate services
42 - Scientific, technological and industrial services, research and design
Goods & Services
Capacitors; Multilayer Ceramic Chip Capacitors; Multilayer Capacitors; Ceramic Capacitors; Harmonic Filtering Components; Disc Type Capacitors with Lead; High Voltage Ceramic Capacitors; Multilayer Ceramic Chip Capacitors with Dipped Radial Lead; Ultra High Voltage Ceramic Capacitors; PLZT (lead lanthanum zirconate titanate) ceramic capacitors; 3-Terminal Feedthrough Capacitors; SMD (Surface Mounted Device) Inductors; SMT (Surface Mount Technology) Inductors; SMD (Surface Mounted Device) Coils; SMT (Surface Mount Technology) Coils; Surface Mount Inductors; Surface Mount Coils; Leaded Inductors; Leaded Coils; Transponder Coils; High Current Flat Wire Inductors; Coupled Inductors; PFC (Power Factor Correction) Choke Coils; Choke Coils; Power Inductors; EMC (Electromagnetic Compatibility) Components, namely, Chip Beads, Noise Suppression Filters, Noise Filters, ESD (Electrostatic Discharge) Notch Filters, 3-terminal Filters, Signal Line Common Mode Chokes, Signal Line Common Mode Filters, Common Mode Chokes, Common Mode Chokes Coils, Common Mode Filters, Power Line Common Mode Chokes, Power Line Common Mode Filters, Differential Mode Chokes, Clamp Filters, Ferrite Cores with Case, Feedthrough Capacitors, Feedthrough Filters, Power Line EMC Filters, EMC Filters, Active Leakage Current Filters that measure earth leakage currents, Current Filters, EMC (Electro Magnetic Compatibility) Reactors, Output Filters, LCL (Inductor-capacitor-inductor) Filters, Ferrites For EMC Suppression, Noise Suppression Sheets made of magnetic materials and resin, Power Line Chokes, High-Current Ring Core Chokes, D-Core Chokes, EMI (Electromagnetic Interference) Chokes, Power EMC Filters, Automotive Filter, EMC (Electromagnetic Compatibility) Feedthrough Filters; RF (Radio Frequency) Components, namely, Filters for radio frequency suppression, Diplexers, Triplexers, Baluns, Directional Couplers, Signal dividers, Signal splitters, Chip Antennas; Signal isolators, Isolators whose function is to isolate and remove adverse current to protect circuits and stabilize their operation, Circulators, Antennas; Voltage Protection Devices, namely, Multilayer Chip Protectors; Temperature Protection sensors; Temperature Protection thermistors; Diodes; Ceramic Transient Voltage Suppressors; Varistors; Electrical surge arresters; Current Protection Thermistors; PTC (Positive Temperature Coefficient) Inrush Current Limiters; NTC (Negative Temperature Coefficient) Inrush Current Limiters; Temperature sensors; NTC (Negative Temperature Coefficient) Thermistors; PTC (Positive Temperature Coefficient) Thermistors; Liquid level sensors; Powder Level Sensors in toner for printers; Pressure Measurement Sensors; Humidity Sensors; Surface potential sensors for sensing the surface potential of charged drums; Printer toner Quantity Sensors; Stroke sensors for non-contact location tracking applications; Gear Tooth Sensors to measure gear rotations in motor vehicles and two-wheeled vehicles; Electric Current Sensors; Angle Measurement Sensors; Hall Effect Switches; Linear Hall Effect Sensors; Hall Effect Sensors; Motion sensors; Inertial Sensors; Vibration sensors; Inclinometers; TMR (Tunnel Magneto Resistance) Sensors; NTC (Negative Temperature Coefficient) Temperature Measurement Sensors; NTC (Negative Temperature Coefficient) Elements; NTC (Negative Temperature Coefficient) Sensor Assembly; NTC (Negative Temperature Coefficient) Sensors; Electric Motor Protection Sensors; Pressure sensors; Pressure Sensor Transmitters; Ultrasonic sensors; Clamp AC Current Sensors; Powder Level Sensors for sensing residual printer toner and residual powders thereon; Piezoelectric Printer Toner Sensors; Magnetic Printer Toner Density Sensors; Magnetic Printer Toner Quantity Sensors; Magnetic Printer Toner Sensors; Printer Toner Density Sensors; Printer Toner Sensors; MEMS (Microelectrical Mechanical Systems) Gyroscope Sensors; MEMS (Microelectrical Mechanical Systems) Accelerometers; Buzzers; Microphones; Piezo speakers; Piezoelectric Actuators; Electric actuators; MEMS Microphones; PTC Thermistors as Heating Elements; Multilayer Piezo Actuator Stacks; Apparatus for generating atmospheric pressure plasma; Control and regulating apparatus, electric, for use in relation to the following goods: Apparatus for generating atmospheric pressure plasma; Ozonisers [ozonators]; Chemical and Physical equipment, for use in the following fields: Production of atmospheric pressure plasma, All goods included in class Ozone generators for use in administering ozone therapy; Ozonizers [ozonators] for medical use; Electric apparatus for generating atmospheric-pressure plasma and low-pressure plasma; Electric control and regulating apparatus, and chemical and physical apparatus for generating low-pressure plasma using at least one piezoelectric element and for generating atmospheric-pressure plasma, included in class 9; High-Voltage Contactors; Switching Spark Gaps; Piezoelectric Buzzers; Electromagnetic Buzzers; Ultrasonic Nebulizer Units for scientific use; Transformers; Current Sense Transformers; Step-up Transformers; Pulse Transformers; Ferrite Cores; Noise Suppressing Sheets; Magnetic Sheets; Noise Suppression Shield in the form of magnetic sheets; NFC (Near Field Communication) Antennas Shield; Anechoic Chambers; Radio Wave Absorbers; Power Supplies; Switching power supplies; AC (alternating current) to DC (direct current) Power Supplies; DC (direct current) to DC (direct current) Converters; Programmable Power Supplies; High Voltage Power Supplies; Bidirectional DC (direct current) to DC (direct current) Converters; Programmable Electronic Loads; Embedded DC (direct current) to DC (direct current) Converters; Magnets; Ferrite Magnets; Neodymium Magnets; PCIe (Peripheral Component Interconnect express) solid state drives; Solid state drives; Computer Flash Memory chips and cards; CF (Compact Flash) Memory Card; NAND flash memories; Compact Flash memory card; SD (Secure Digital) Memory Cards; Micro SD (Secure Digital) memory cards; Memory cards; Flash memory controller, namely, the digital circuit that manages the reading and writing of data in NAND flash memory; Memory controller, namely, the digital circuit that manages the reading and writing of data in NAND flash memory; Wireless power coil units; Wireless power transfer units and modules; Wireless power transfer units and modules for the wireless charging of rechargeable batteries in electronic devices, batteries in industrial equipment, batteries in electric vehicles, batteries in wearable devices and batteries in medical devices; FOUP Load Port, namely, a station for supporting a semiconductor wafer transporting container where the cover of the transporting container is separated or separable from the transporting container; Transparent Conductive Film; Solar cells; HDD Heads; Magnetic heads for reading and reproducing data; Magnetic recording heads; Batteries; Electric batteries; Lithium-Ion Batteries; Rechargeable batteries; Rechargeable electric batteries; Solid-state batteries; ASIC (Application Specific Integrated Circuit); Microcontrollers; Micro modules comprising substrates with built-in ICs [integrated circuits]; Circuit boards; Electrical circuit boards; Printed circuit boards; Downloadable software for use in positioning systems for automotive, robotic, venue or personal applications; Positioning Software; Downloadable software for use in connection with machine learning applications; downloadable computer software, used in combination with artificial intelligence for use in predictive analytics, machine learning and automated model building in the field of equipment and system performance monitoring; Thermometers not for medical purposes; Aluminum Electrolytic Capacitors, namely, Capacitors with Screw Terminals, Snap-in, Multi Pin, Large Size Capacitors, Ultra-Compact Snap-in capacitors, Axial Capacitors, Hybrid Polymer Capacitors; Capacitors, Single-Ended (Radial) Capacitors; Film Capacitors, namely, Metallized Polyester Capacitors, Metallized Polypropylene Capacitors, EMI (Electromagnetic Interference) Suppression Capacitors, Power Capacitors; PFC (power factor correction) Components, namely, PFC (power factor correction) Capacitors; Harmonic Filtering Components, namely, MV (Medium Voltage) Surge Capacitors, Vacuum Contactors, Active Harmonic Filter, Power Optimizer, Static Var Generator, PFC (power factor correction) Controllers, Capacitor Contactors, Thyristors and thyristor switches, Grid analysis tool for measuring, displaying and storage of electric parameters in low-voltage grids; Optical image stabilization modules for use in cellphone cameras, digital cameras and tablet computers for stabilizing images to be captured via photography and video; Optical image stabilization actuators; Optical image stabilizers; Electronic circuits; Hard disk drive suspensions; Blank magnetic tapes; Blank magnetic discs; Blank magnetic optical disks; Blank optical disks; Blank compact discs, blank DVDs and other digital recording media; Earphones; Headphones; SAW (surface acoustic wave) components and modules; Software Product comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Downloadable Product comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Data storage device comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; CD, DVD, data-stick, etc. comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Computer Systems comprising software for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Training material for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; Simulation tools for advertising, business management, business development, marketing research or analysis, business consultancy, investment management, venture capital funding service, start-up support, designing of machines, apparatus or instruments [including their parts], design of integrated circuits, consulting services in the field of product design and development, testing or research on machines, apparatus or instruments [including their parts], software design and development, artificial intelligence, and technological consultancy.; SATA (Serial Advanced Technology Attachment) solid state drives Advertising services; Business management, organization and administration; Office functions; Marketing research or analysis; Business management analysis or business consultancy; New business venture development and formation consulting services; Business consulting services for emerging and start-up companies; Business development services, namely, providing start-up support for businesses of others Capital investment; Venture capital funding services for companies; Venture capital funding services to emerging and start-up companies; Venture capital advisory services Designing of machines, apparatus, instruments [including their parts] or systems composed of such machines, apparatus and instruments; Design of integrated circuits; Technological advice relating to computers, automobiles and industrial machines; Consulting services in the field of product design and development; Testing services in the field of electrical engineering; Testing or research on machines, apparatus and instruments [including their parts]; Product testing; Computer software design, computer programming, or maintenance of computer software; Providing computer programs on data networks; Software as a service [SaaS]; Providing online nondownloadable computer software; Rental of computer software; Artificial intelligence as a service [AIaaS]; Technology consultation in the field of artificial intelligence (AI); Research in the field of artificial intelligence technology:; Computer software consultancy; Business technology software consultation services; Consulting services in the field of software as a service (SAAS); Consulting services in the field of providing online, non-downloadable software and applications; Consultation services relating to computer software
A multilayer coil component includes an element body, and a first coil and a second coil disposed inside the element body and provided coaxially. The first coil includes a first coil conductor, a second coil conductor, and a third coil conductor. The element body includes a first insulating layer interposed between the first coil conductor and the second coil conductor, and a second insulating layer interposed between the second coil conductor and the third coil conductor. The first coil conductor, the second coil conductor, the third coil conductor, and the second coil are disposed in this order along an axial direction of the first coil. A thickness of the second insulating layer is greater than a thickness of the first insulating layer.
The laser module comprises a plurality of subcarriers 20, a plurality of laser elements 30 mounted on the main surfaces of the plurality of subcarriers 20, an optical waveguide substrate 40 having an optical waveguide layer 50 on its main surface, which has an optical waveguide 51 for guiding laser light respectively emitted from the plurality of laser elements 30, a heat sink 60 having comb-shaped fin portion that contact both side surfaces of the plurality of subcarriers 20, and a package 110 that houses the plurality of subcarriers 20 on which the plurality of laser elements 30 are mounted, the optical waveguide substrate 40 on which the optical waveguide layer 50 is mounted, and the heat sink 60. The plurality of subcarriers 20 are thermally coupled to the package 110 via the heat sink 60.
An electronic component includes a substrate, and an element body disposed on the substrate, in which the element body is configured to include a plurality of conductor layers and insulating layers, the plurality of conductor layers include a first conductor layer disposed on the substrate and a second conductor layer disposed on the first conductor layer, the first conductor layer includes a plurality of first conductor patterns, the second conductor layer includes a second conductor pattern, the first conductor pattern and the second conductor pattern are electrically connected by a first connection conductor, a first protruding portion is provided in the second conductor pattern, and the first protruding portion of the second conductor pattern is disposed in the insulating layer positioned between two adjacent first conductor patterns.
H01G 4/236 - Terminals leading through the housing, i.e. lead-through
H01G 17/00 - Structural combinations of capacitors or other devices covered by at least two different main groups of this subclass with other electric elements, not covered by this subclass, e.g. RC combinations
A magnetic sensor includes an insulating layer, a coil element disposed on the insulating layer, and a first insulating film. The insulating layer includes a first inclined surface and a second inclined surface. The coil element includes a first side surface and a second side surface. The first side surface includes a first portion and a second portion, the second portion being disposed at a position farther from a top surface of a substrate than a position where the first portion is disposed. The first portion is inclined so as to intersect with the first and second inclined surfaces, and is also inclined so as to be closer to the second side surface at positions closer to the top surface of the substrate. The first insulating film covers the first portion.
This solid electrolyte battery includes: a positive electrode; a negative electrode; and a solid electrolyte layer sandwiched between the positive electrode and the negative electrode. The solid electrolyte layer contains a solid electrolyte containing Li, Zr, SOx, and one or more halogens. A first region of the solid electrolyte layer which is in contact with the negative electrode contains P. The solid electrolyte layer has a molar ratio of SOx to Zr of 0.25 to 3.0, a molar ratio of P to Zr of 0.02 to 0.6, and a molar ratio of the halogens to Zr of 3.0 to 6.1.
This magnetoresistive effect element comprises: a magnetization fixed layer; a nonmagnetic layer; and a magnetization free layer. The magnetization free layer has, in order from the side close to the nonmagnetic layer, a Heusler alloy layer, an orientation control layer, and a magnetic layer. The orientation control layer has a first region, a second region, and a third region. The third region is sandwiched between the first region and the second region in the thickness direction. At least a part of the first region is lattice-matched with the Heusler alloy layer. At least a part of the second region is lattice-matched with the magnetic layer. The third region contains a heavy metal element having an atomic number of 39 or more.
This neuromorphic device comprises a first memristor layer, a second memristor layer, and a third memristor layer. The first memristor layer, the second memristor layer, and the third memristor layer are each at a different level. The first memristor layer comprises a plurality of first-layer memristors. The second memristor layer comprises a plurality of second-layer memristors. The third memristor layer comprises a plurality of third-layer memristors. A read current flowing through any one of the plurality of first-layer memristors is configured so as to be caused to flow to the third memristor layer via any one of the plurality of second-layer memristors.
This fan motor has: a rotor provided with a magnetic flux generation member and blades; and a stator provided with a coil facing the magnetic flux generation member. The magnetic flux generation member has a soft magnetic body, and a magnetic body film laminated on the soft magnetic body. The thickness of the magnetic body film is 10-500 μm.
H02K 1/2788 - Outer rotors the magnetisation axis of the magnets being perpendicular to the rotor axis the rotor consisting of a single magnet or two or more axially juxtaposed single magnets
81.
LITHIUM SECONDARY BATTERY AND METHOD FOR PRODUCING SAME
A lithium secondary battery according to an embodiment is a lithium secondary battery including a negative electrode and a positive electrode, in which the negative electrode has: in the following order, a current collector layer; a first lithium metal layer made of a lithium metal foil; a second lithium metal layer including granular lithium metal; and a third lithium metal layer including lithium metal and being porous, the granular lithium metal having an average particle diameter larger than an average pore diameter of the third lithium metal layer.
This light source module includes a subcarrier, a plurality of laser light sources installed on an upper surface of the subcarrier, a heat dissipation member arranged near a lower surface of the subcarrier, an optical member substrate, and an optical waveguide arranged on a surface side of the optical member substrate. The subcarrier and the optical member substrate are arranged such that light output from the laser light sources is input to the optical waveguide, and are integrally coupled with a metal layer therebetween. The heat dissipation member and the optical member substrate are integrally coupled.
A multilayer coil component includes an element body, and a first coil and a second coil disposed inside the element body and provided coaxially. The first coil includes a first coil conductor, a second coil conductor, and a third coil conductor. The element body includes a first insulating layer interposed between the first coil conductor and the second coil conductor, and a second insulating layer interposed between the second coil conductor and the third coil conductor. The first coil conductor, the second coil conductor, the third coil conductor, and the second coil are disposed in this order along an axial direction of the first coil. A thickness of the second insulating layer is smaller than a thickness of the first insulating layer.
The laser module comprises a plurality of subcarriers 20, a plurality of laser elements 30 installed on the respective main surfaces of the plurality of subcarriers 20, and an optical waveguide substrate 40 having an optical waveguide layer 50 on its main surface, the optical waveguide layer 50 having an optical waveguide 51 for guiding the laser light respectively emitted from the plurality of laser elements 30. The emission surface 50C of the optical waveguide layer 50 is inclined obliquely with respect to a plane perpendicular to the extension direction of the optical waveguide 51 at the emission surface 50C.
An electronic component includes: a substrate; and an element body disposed on the substrate and including a pair of main surfaces facing each other and four side surfaces connecting the pair of main surfaces, in which the element body includes a plurality of conductor layers and insulating layers, the plurality of conductor layers include a first conductor layer disposed on the substrate and a second conductor layer disposed on the first conductor layer, the first conductor layer includes a first conductor pattern, the second conductor layer includes a second conductor pattern, the first conductor pattern is covered with an adhesion layer, and there is a region in which a distance from one side surface to the adhesion layer is equal to or less than a thickness of the second conductor pattern.
H03H 1/00 - Constructional details of impedance networks whose electrical mode of operation is not specified or applicable to more than one type of network
A solid-state battery having excellent reliability in which damage caused by expansion of a negative electrode layer during charging can be prevented is implemented. A solid-state battery includes a battery body. The battery body includes a stacked structure in which a positive electrode layer and a negative electrode layer are stacked in a first direction with an electrolyte layer interposed therebetween, and a cover layer configured to cover the stacked structure. In the battery body, an edge of the electrolyte layer in contact with the cover layer is located inward relative to an edge of the negative electrode layer in contact with the cover layer in a cross-sectional view along a second direction orthogonal to the first direction.
H01M 4/62 - Selection of inactive substances as ingredients for active masses, e.g. binders, fillers
H01M 10/0585 - Construction or manufacture of accumulators having only flat construction elements, i.e. flat positive electrodes, flat negative electrodes and flat separators
H01M 50/103 - Primary casingsJackets or wrappings characterised by their shape or physical structure prismatic or rectangular
H01M 50/46 - Separators, membranes or diaphragms characterised by their combination with electrodes
A sensor component can comprise a multi-sensor element arrangement comprising multiple sensor elements on a single die that can be attached to a top layer of a multi-layer component. The sensor elements can be associated with one or more ASICs on the top layer of the sensor component, and the ASIC(s) can be associated with other layers, including conductive terminals of the bottom layer, of the multi-layer component. The sensor component can be associated with a common bus, and the sensor elements and/or ASIC(s) can be respectively and individually addressed, configured, and/or controlled based on respective address, configuration, control, and/or other signals that can be received by the sensor component via the common bus. The sensor component can have a larger sound port and larger back volume that can be shared by the sensor elements to enhance acoustic performance.
This memristor comprises a domain wall motion layer, a magnetic layer, and a nonmagnetic layer. The nonmagnetic layer is sandwiched between the domain wall motion layer and the magnetic layer. The conductance of a stacked body including the domain wall motion layer, the magnetic layer, and the nonmagnetic layer changes between a maximum value and a minimum value when the position of a domain wall in the domain wall motion layer changes. A first conductance change amount when the conductance changes at an intermediate value between the maximum value and the minimum value and a second conductance change amount when the conductance reaches the maximum value or the minimum value from the intermediate value differ from each other when the same write pulse is applied.
This domain wall displacement element is provided with a domain wall displacement layer, a magnetic layer, and a nonmagnetic layer. The nonmagnetic layer is sandwiched between the domain wall displacement layer and the magnetic layer. The domain wall displacement layer has a domain wall displacement region including a first end in a first direction, and a domain wall introduction region including a second end opposite to the first end in the first direction. The concentration of a first nonmagnetic element in the domain wall introduction region is higher than that in the domain wall displacement region.
Methods and systems are disclosed for presence detection and relate to making a positive occupancy determination based at least in part on a signal from a primary presence detection sensor. Operation of an ultrasonic transducer is switched to an increased detection mode. The positive occupancy determination is then maintained based at least in part on returned signals from the ultrasonic transducer and output of an acoustic activity detection sensor.
A coil component includes a coil C1 connected between electrodes E1 and E2, and a coil C2 connected between electrodes E3 and E4. The coil C1 includes a conductor pattern 11 extending in the X-direction, a conductor pattern 12 connected between the electrode E1 and one end of the conductor pattern 11, and a conductor pattern 13 connected between the electrode E2 and the other end of the conductor pattern 11. The coil C2 includes a conductor pattern 24 extending in the X-direction, a conductor pattern 25 connected between the electrode E3 and one end of the conductor pattern 24, and a conductor pattern 26 connected between the electrode E4 and the other end of the conductor pattern 24. The coils C1 and C2 are arranged adjacent to each other in the Y-direction, and the conductor patterns 11 and 24 are formed at mutually different positions in the X-direction.
An optical element assembly includes a plurality of laser diode assemblies and an optical waveguide substrate having a main surface on which an optical waveguide layer having an optical waveguide for guiding laser light output from the plurality of laser diode assemblies is provided. Each of the laser diode assemblies includes a base plate and a laser diode formed on the base plate. At least one of the plurality of laser diode assemblies is provided at a spacing from an adjacent laser diode assembly so that a mounting pitch satisfies formula (1), P≥W+0.9T . . . (1). (P denotes a mounting pitch, W denotes a width of the base plate, and T denotes a thickness of the base plate).
An electronic component includes an element body including a side surface, an internal conductor disposed in the element body, and an external conductor disposed on the side surface and connected to the internal conductor. The external conductor includes a base electrode layer, a first plating layer located on the base electrode layer and including Cu, a second plating layer located on the first plating layer and including any one metal selected from the group consisting of Sn, In, Zn, Au, Ag, Cr, Mn, Fe, and Co, and a third plating layer located on the second plating layer and including Ni.
A substrate structure includes a substrate, a pair of conductor patterns formed on the main surface of the substrate and arranged spaced apart from each other, and a resist layer covering the main surface of the substrate. In at least part of a region between the pair of conductor patterns, a coating layer having higher adhesiveness than the resist layer covers the substrate with the coating layer being in contact with the substrate.
H02M 3/335 - Conversion of DC power input into DC power output with intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate AC using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only
A solid electrolyte layer includes a first phase region containing a first solid electrolyte which contains Li, Si, V and O and has a γ-Li3PO4 type crystal structure and a second phase region containing a second solid electrolyte which contains Li, Si, V and O, has a different composition from the first solid electrolyte, and has a Li4SiO4 type crystal structure. In the solid electrolyte layer, the ratio of the volume of the first phase region to the volume of the second phase region is preferably 0.1 or more and 9 or less.
An electronic component includes an element body including a side surface, an internal conductor disposed in the element body, and an external conductor disposed on the side surface and connected to the internal conductor. The external conductor includes a base electrode layer, a metal plating layer located on the base electrode layer, and a plating layer that is located on the metal plating layer and includes Ni. The metal plating layer has a thickness of 5 μm or more. The metal plating layer includes any one metal selected from the group consisting of Sn, In, Zn, Au, Ag, Cu, Cr, Mn, Fe, and Co, or includes an Sn-M alloy, M being any one metal selected from the group consisting of Cu, Ag, Bi, Zn, and Co.
This reservoir computer comprises a storage unit and a calculation unit. The storage unit stores a distribution of coupling coefficients. The distribution of coupling coefficients is of coupling coefficients output for each learning session when learning is performed each time data is inputted in reservoir computing. The calculation unit determines that an abnormality exists if the coupling coefficients output when new data is inputted in reservoir computing exceed a prescribed range set from the distribution of coupling coefficients stored in the storage unit.
G06N 3/044 - Recurrent networks, e.g. Hopfield networks
G06F 18/2413 - Classification techniques relating to the classification model, e.g. parametric or non-parametric approaches based on distances to training or reference patterns
[Problem] To provide a magnetic sensor having a magnetic shield, wherein a current required for modulation is reduced and leakage flux from the magnetic shield is hardly applied to a sensor unit. [Solution] The present invention comprises: a sensor unit 100 for detecting a magnetic field φd to be detected; and a magnetic shield 200 for bypassing the magnetic field φd to be detected. The magnetic shield 200 includes a closed magnetic circuit portion 201 having an annular structure, a coil C1 wound around the closed magnetic circuit portion 201, and a bypass 210 connected to the closed magnetic circuit portion 201.
A reservoir system according to the present embodiment comprises a plurality of sensors (1) and a reservoir (2). The plurality of sensors (1) are each configured to sense a time-series signal (S1) and transmit, to the reservoir (2), a time-series sensor signal (S2) which is based on the time-series signal (S1). The reservoir (2) non-linearly transforms the sensor signal (S2) from each of the plurality of sensors (1). The reservoir (2) is configured to be capable of outputting output signals (S3, S4) as future prediction data, before input of the time-series sensor signal (S2) into the reservoir (2) is completed.
A gas sensor module according to one embodiment of the present invention comprises: a sensor device that is capable of detecting the gas concentration and capable of outputting a detection signal including a voltage corresponding to the gas concentration; and a processing circuit that is capable of generating a sequence of signal values by performing sampling processing on the basis of the detection signal, capable of calculating a characteristic curve by performing regression analysis on the basis of a plurality of the latest signal values included in the sequence, and capable of calculating the gas concentration on the basis of the value on the characteristic curve at a first timing, which is the latest sampling timing in the sampling processing, or a second timing after the first timing.