Abstract:
An electrochemical device includes electrodes stacked one on the other with a separator intervening between the adjacent electrodes. The electrode includes a current collector and an electrode layer stacked on the current collector via an adhesive resin layer. The electrode layer contains an active material, an electrically conductive auxiliary and a binder resin. At least part of the electrically conductive auxiliary or the active material penetrates the adhesive resin layer to establish an electrical connection with the current collector.
Abstract:
A functional film of the invention includes a microparticulate-containing layer containing functional microparticulates. The microparticulate-containing layer inhibits the occurrence of cracks even when drawn 10%. When the functional film includes a microparticulate-containing layer containing conductive microparticulates, the microparticulate-containing layer exhibits a surface resistivity after drawn 10% which is at most 10 times greater than the surface resistivity prior to drawing. The invention thus implements a functional film which is unsusceptible to reduction or loss of its function due to deformation.
Abstract:
A non-aqueous electrolyte secondary battery having a large capacity with improved charge/discharge characteristics is provided. The non-aqueous electrolyte secondary battery is fabricated by combining a positive electrode (4) and a negative electrode (2) so that the relationship: 0.9≦Kp/Kn≦1.1 is satisfied, where an initial efficiency of the positive electrode (4) is represented by Kp and an initial efficiency of the negative electrode (2) is represented by Kn. An active material of the positive electrode (4) preferably contains a lithium composite oxide having a composition of LixNiyMzO2 (0.8
Abstract:
A laminated film of the invention comprises a core layer made of synthetic resin, and a conductive release layer formed on at least one side of the core layer, wherein the conductive release layer comprises condensation reaction type release binder and conductive polymer, and this laminated film of the invention is preferably used as a process film when manufacturing ceramic green sheet by sheet-forming a ceramic material slurry; is able to manufacture a thin ceramic green sheet constantly having an uniform thickness; and is superior in antistatic and release properties.
Abstract:
The present invention provides a electrical conductive film for transfer in order to furnish a surface of an article, even an article poor in flexibility such as a board material, with a transparent electrical conductive film having a uniform thickness and having a lower electric resistance value; a method for forming a transparent electrical conductive film using the same; and a transparent electrical conductive film. An electrical conductive film for transfer comprising at least a conductive layer 4 on a support 1, said conductive layer 4 being releasable from the support 1, wherein the conductive layer 4 comprises conductive fine particles and an organic group-containing metal compound of a metal element, an oxide of which exhibits the electrical conductivity. The electrical conductive film for transfer is stuck on a surface of an object article to be furnished with the transparent electrical conductive film through an adhesive layer 5, then the adhesive layer is cured after the sticking and the support 1 is released, and subsequently heat treatment is performed to convert the organic group-containing metal compound in the conductive layer 4 into metal oxide.
Abstract:
It is disclosed a transparent conductive multi-layer structure which comprises a substrate overlaid, desirably interposed by a support, with a conductive layer containing fine conductive particles, preferably the fine particles of indium-tin oxide (ITO), said multi-layer structure having a surface resistance of 10-103Ω/□ and a visible light transmittance of at least 70%. A process for producing this structure is also disclosed. The present invention can produce transparent conductive multi-layer structures by utilizing a coating method which retains the advantages of its easiness of forming large-area conductive films, simplification of apparatus, high productivity and low manufacturing cost, by firstly obtaining a transparent conductive film that has low enough surface resistance to give high conductivity while exhibiting satisfactory transparency, and then applying the transparent conductive film to a glass or resin panel, etc.
Abstract:
The present invention provides a electrical conductive film for transfer in order to furnish a surface of an article, even an article poor in flexibility such as a board material, with a transparent electrical conductive film having a uniform thickness and having a lower electric resistance value; a method for forming a transparent electrical conductive film using the same; and a transparent electrical conductive film. An electrical conductive film for transfer comprising at least a conductive layer 4 on a support 1, said conductive layer 4 being releasable from the support 1, wherein the conductive layer 4 comprises conductive fine particles and an organic group-containing metal compound of a metal element, an oxide of which exhibits the electrical conductivity. The electrical conductive film for transfer is stuck on a surface of an object article to be furnished with the transparent electrical conductive film through an adhesive layer 5, then the adhesive layer is cured after the sticking and the support 1 is released, and subsequently heat treatment is performed to convert the organic group-containing metal compound in the conductive layer 4 into metal oxide.
Abstract:
The present invention provides a functional film for transfer in order to furnish a surface of an article, even an article poor in flexibility, such as a board material, with a functional layer having a uniform thickness and a higher function, e.g. a transparent conductive layer having a lower electric resistance; an article furnished with the functional layer; and a method for producing the article furnished with the functional layer. A functional film for transfer comprising at least a functional layer 4 on a support 1, said functional layer 4 being releasable from the support 1, wherein the functional layer 4 is a compressed layer of functional fine particles, and further, on the functional layer 4 an adhesive layer 5 comprising at least an acrylic type monomer (M) and a silicone type resin (S) is provided. The functional film for transfer is stuck, through the adhesive layer 5, onto a surface of an object article to be furnished with the functional layer; the adhesive layer 5 is cured; the support 1 is released; and subsequently calcining is performed.
Abstract:
A method of forming a functional layer pattern capable of demonstrating various functions, for example, a transparent conductive layer pattern having a low electric resistance value is provided. A method of forming a functional layer pattern, comprises the steps of: (A) preparing a functional film for transfer, having a functional layer formed on a support, the functional layer being releasable from the support and being composed of a compressed layer of functional fine particles; (B) attaching the functional film for transfer onto a surface of the substrate through a photosensitive adhesive layer so that the support is outwardly oriented; (C) pattern-exposing the photosensitive adhesive layer so that the photosensitive adhesive layer is patterned into a cured region and an uncured region and then adhering the functional layer corresponding to the cured region onto the surface of the substrate through the adhesive layer; and (D) releasing the support from the substrate so as to leave a functional layer on the substrate in the cured region while releasing a functional layer from the substrate together with the support in the uncured region.
Abstract:
The present invention provides a functional film for transfer, by means of the application method, having a functional layer capable of exhibiting various functions, for example, a transparent conductive layer being low in electric resistance value, an article provided with the functional layer, and a method for producing the article provided with the functional layer. A functional film at least having a functional layer (4) on a support (1), said functional layer being releasable from the support (1), wherein the functional layer (4) is a compressed layer of functional fine particles. The compressed layer of the functional fine particles is obtained by applying a liquid in which the functional fine particles are dispersed onto the support (1) followed by drying to form a layer containing the functional fine particles, and compressing the layer containing the functional fine particles. The present invention has an advantage in the case in which a functional layer with uniform thickness is provided to an article being poor in flexibility such as plate materials.