Abstract:
A conductive pattern production device includes: a patterning unit that forms a pattern of a composite ink on a base member; and a burning unit that burns the pattern by high-frequency heating. The composite ink is obtained by mixing a particle material that is a material having a relative permeability of 200 or above or a carbon micro-coil and a conductive ink that has, after the burning, a resistivity of 1 to 2000 μΩ·cm.
Abstract:
The present invention relates to the very innovative field of smart textiles. More particularly the present invention discloses an innovative process for screen printing of textile substrates, by means of primers, for depositing on said substrates dielectric, conductive, resistive, magnetic, electroluminescent materials and many others.
Abstract:
A cured product exhibits good heat resistance and flame retardancy as well as low dielectric constant and low loss tangent. A phosphorus-containing compound (i) obtained by a reaction between an aromatic aldehyde (a1) having an alkoxy group as a substituent on a nucleus and an organic phosphorus compound (a2) having a P—H group or a P—OH group in a molecular structure is reacted with a phenolic substance (a3) to obtain a phosphorus-containing phenolic substance (A1). Then the phosphorus-containing phenolic substance (A1) is reacted with an aromatic dicarboxylic acid or an anhydride or dihalide of an aromatic dicarboxylic acid or a C2-6 saturated dicarboxylic acid or an anhydride or dihalide of a C2-6 saturated dicarboxylic acid (A2) so that all or some of hydroxyl groups of the phenolic substance (A1) form ester bonds.
Abstract:
A printed wiring board includes a core substrate having a cavity, multiple electronic components accommodated in the cavity, and a build-up layer formed on the substrate and including an insulating interlayer such that the interlayer is covering the cavity. The components include a first component, second component and third component, the core substrate has a first projection structure partitioning the first and second components in the cavity and a second projection structure partitioning the second and third components in the cavity, and the cavity and the first and second structures are formed in the substrate such that T1
Abstract:
A body (1, 1′, 1″) produced by an in-mold process has a first film (2, 2′, 2″) with at least one electrical or electronic functional layer (25). In a functional area (20a, 20a′, 20a″) of this functional layer, at least one electrical or electronic component is provided, and at least one electrical connection for this is provided in a contact area (20b, 20b′, 20b″). The first film is partially back-injection molded with a plastic main material (3, 3′, 3″) such that the contact area (20b, 20b′, 20b″) is at least partially free from this plastic main material (3). Suitable formation of the first film (2, 2′, 2″) guarantees that a tab (F) separated from the plastic main material (3, 3′, 3″) is provided which adjoins a back-injection molded part of the first film in an area of surface (20c, 20c′, 20c″) of the body which is at a distance from an edge (31, 31′) of the body delimiting the surface (30) with the first film.
Abstract:
Some embodiments include a method of preparing a flexible substrate assembly. Other embodiments of related methods and structures are also disclosed.
Abstract:
A laminate that contains a film on which one or more conductive elements are disposed is provided. The film is formed from a polymer composition that contains an aromatic polyester and an additive that is “laser-activatable” in the sense that it can be activated by a laser direct structuring (“LDS”) process. By selectively controlling the nature of the polymer composition and its respective components, the present inventors have discovered that a film can be readily formed that has good heat resistance, yet is also capable of exhibiting good adhesion to the conductive elements due to the fact that such elements can be integrally formed on the film using an LDS process.
Abstract:
Provided is a solar battery module wherein solar battery cells are electrically connected to each other by using a wiring board having a predetermined wiring pattern formed on a resin base material. A method for manufacturing such solar battery module is also provided. In the wiring board of the solar battery module, a direction wherein a design margin is small is permitted to be a direction wherein the thermal contraction ratio of the resin base material is small, by the shape of an electrode pattern on the solar battery cell and that of the wiring pattern on the wiring board. At the time of manufacturing such solar battery module, temperature in a heat treatment step is set at 100° C. or higher but not higher than 180° C. Electrode designing at a fine pitch is made possible and the solar battery module exhibits high solar battery characteristics, even when the solar battery cells are connected by using wiring boards composed of various types of resin materials having thermal compression ratio not sufficiently low.
Abstract:
A transparent component comprises a substrate (1) having an interface surface, with a pattern of electrically conductive copper (2) disposed on the interface surface with of the substrate, wherein the copper has a copper sulfide surface coating (3). It is found that copper with a suitably thin coating layer of copper sulfide has reduced visibility compared with uncoated copper, so that the metal pattern is less distracting to a viewer. The component finds application as part of a touch-sensitive display, with the substrate overlying or forming part of the display, with images on the display being visible to a user through the transparent component.
Abstract:
A transparent component comprises a substrate (1) having an interface surface, with a pattern of electrically conductive copper (2) disposed on the interface surface with of the substrate, wherein the copper has a copper sulfide surface coating (3). It is found that copper with a suitably thin coating layer of copper sulfide has reduced visibility compared with uncoated copper, so that the metal pattern is less distracting to a viewer. The component finds application as part of a touch-sensitive display, with the substrate overlying or forming part of the display, with images on the display being visible to a user through the transparent component.