Abstract:
A pseudo sheet structure is usable for a sensor configured to emit an electromagnetic wave in a band ranging from 20 GHz to 100 GHz. The pseudo sheet structure includes a plurality of conductive linear bodies arranged at an interval L satisfying a formula (1) below, 0.034×λS≤L≤20 mm (1). In the formula (1), L is the interval between the plurality of conductive linear bodies, λS is a wavelength of the electromagnetic wave emitted by the sensor, and a unit for each of L and λS is mm.
Abstract:
A method of producing a conductive-sheet-equipped article includes: forming electrodes on an adherend to obtain an electrode-equipped adherend; and stretching and sticking a sheet-shaped conductive member to the electrode-equipped adherend.
Abstract:
A sheet-shaped heat-generating element includes a quasi-sheet structure including a plurality of metal wires arranged at an interval, the metal wires each including a core containing a first metal as a main component and a metal coating film provided on an exterior side of the core, the metal coating film containing a second metal different from the first metal as a main component. A volume resistivity of the first metal is in a range from 3.0×10−6 [Ω·cm] to 5.0×10−4 [Ω·cm] and a reference electrode potential of the second metal is +0.34 V or more.
Abstract:
The present disclosure provides an electrically conductive sheet for use in three-dimensional molding including: a pseudo-sheet structure in which plural electrically conductive linear bodies extending unidirectionally are arranged spaced apart from each other; and a resin protective layer provided on a surface of the pseudo-sheet structure. In the above mentioned electrically conductive sheet, each of the electrically conductive linear bodies in the pseudo-sheet structure includes: a first portion formed in a wave pattern having a wavelength λ1 and an amplitude A1; and a second portion formed in a wave pattern having a wavelength λ2 and an amplitude A2, at least one of which is different from the wavelength λ1 or the amplitude A1 of the first portion.
Abstract:
A carbon nanotube sheet structure includes: a carbon nanotube sheet; a first base material including a first base material surface facing the carbon nanotube sheet; and a first spacer providing a gap between the carbon nanotube sheet and the first base material. A first base material surface of the first base material includes a first region on which the first spacer is provided and a second region on which the first spacer is not provided. The first base material is spaced apart from the carbon nanotube sheet at the second region on the first base material surface.
Abstract:
A sheet for producing a multilayer optical recording medium comprises optical recording layers and adhesive layers laminated on one another, wherein the adhesive layer comprises an adhesive comprising a polymer as a main component, the polymer includes fluorine-containing monomer and/or silicon-containing monomer as a constituent monomer component, the adhesive layer has no domain structure or has a domain structure with a size of of 110 nm or less, a total content of the fluorine-containing monomer and the silicon-containing monomer is 10 to 100 mass % when a monomer total amount as the constituent monomer component in the polymer is 100 mass %. According to the sheet for producing a multilayer optical recording medium, a multilayer optical recording medium can be produced which can detect reflected light having sufficient intensity from the interface between the optical recording layer and the adhesive layer and which generates less scattered light in the adhesive layer and causes less noise.
Abstract:
A wiring sheet includes a pair of electrodes and a pseudo sheet structure including a plurality of conductive linear bodies arranged at intervals, in which the pseudo sheet structure is electrically connected to the electrodes, and the conductive linear bodies and the electrodes are fixed with contact fixing members.
Abstract:
A sheet includes a pseudo-sheet structure including a plurality of linear-bodies with a volume resistivity R of from 1.0 × 10-7 Ωcm to 1.0 × 10-1 extending in one direction, aligned parallel to one another, and spaced apart from one another, satisfies the relation: L/D ≥ 3, wherein D represents the diameter of the linear-bodies, and L represents the spacing between adjacent ones of the linear-bodies, and also satisfies the relation: (D2/R) × (⅟L) ≥ 0.003, wherein D represents the diameter of the linear-bodies, L represents the spacing between adjacent ones of the linear-bodies, R represents the volume resistivity of the linear-bodies, and D and L are in units of cm. A heating element and a heating device each include the sheet.
Abstract:
A manufacturing method of a sheet-shaped conductive member includes: providing a pseudo sheet structure to a first film, the pseudo sheet structure including a plurality of conductive linear bodies arranged at an interval therebetween, the first film including a process film and a first resin layer; attaching a second film including a second resin layer to the first film with the second resin layer in contact with the pseudo sheet structure; and drying or curing at least one of the first resin layer or the second resin layer.
Abstract:
A sheet-shaped conductive member includes: a base material; a resin layer; and a pseudo sheet structure in which a plurality of conductive linear bodies are arranged at an interval, wherein each of the conductive linear bodies has a wavy shape in a plan view of the sheet-shaped conductive member, and in a direction orthogonal to an axial direction of the conductive linear bodies, any adjacent ones of the conductive linear bodies differ from each other in at least one of a wavelength, amplitude, phase or thickness.