Abstract:
A transparent conductive laminate having a completely crystallized, transparent conductive layer on a substrate comprising an organic polymer molding, and a process for producing the same. The transparent conductive layer is excellent in transparency and wet heat confidence and is not excessively low in specific resistivity. The transparent conductive laminate includes a substrate comprising an organic polymer molding having formed thereon a completely crystallized, transparent conductive layer comprising an In.Sn composite oxide having an amount of Sn atom of 1 to 6% by weight based on the total weight of In atom and Sn atom and having a film thickness of 15 to 50 nm, a Hall mobility of 30 to 45 cm2/V·S, and a carrier density of from 2×1020/cm3 to 6×1020/cm3.
Abstract:
the transparent conductive film of the present invention is a transparent conductive film, comprising: an organic polymer film substrate; a first oxide thin film with a high visible-light transmittance formed on the organic polymer film substrate; and a ZnO-based transparent conductive thin film formed on the first oxide thin film, wherein the first oxide thin film has an oxygen content corresponding to 60 to 90% of the stoichiometric value before the ZnO-based transparent conductive thin film is formed. The transparent conductive film exhibits low resistance even when the ZnO-based transparent conductive thin film is relatively thin (particularly 100 nm or less in thickness), and has a low rate of change in resistance value even under a humidification and heating environment.
Abstract:
A transparent conductive laminate having a completely crystallized, transparent conductive layer on a substrate comprising an organic polymer molding, and a process for producing the same. The transparent conductive layer is excellent in transparency and wet heat confidence and is not excessively low in specific resistivity. The transparent conductive laminate includes a substrate comprising an organic polymer molding having formed thereon a completely crystallized, transparent conductive layer comprising an In—Sn composite oxide having an amount of Sn atom of 1 to 6% by weight based on the total weight of In atom and Sn atom and having a film thickness of 15 to 50 nm, a Hall mobility of 30 to 45 cm2/V-S, and a carrier density of from 2×1020/cm3 to 6×1020/cm3.
Abstract:
A transparent laminate is constituted by a transparent substrate, a low refractive index transparent thin film formed on a surface of the transparent substrate, between three and five combination layers laminated successively on a surface of the first low refractive index transparent thin film, another high refractive index transparent thin film formed on a surface of the combination layers, and an outermost layer. The combination layers has high refractive index transparent thin films and silver type transparent electrical conductor thin films, each combination layer having one high refractive index transparent thin film and one silver type transparent electrical conductor thin film. The outermost layer is stuck through a transparent adhesive agent layer onto a surface of the high refractive index transparent thin film farthest from the transparent substrate. The outermost layer is at least one of selected from the group of consisting of an anti-reflection film, an anti-mirroring film and a low reflection anti-mirroring film. The low refractive index transparent thin film is an optically transparent thin film having a refractive indexing in a range of 1.3 to 1.6 and each of the high refractive index transparent thin film is an optically transparent thin film having a refractive index nH in a range of from 1.9 to 2.5.
Abstract:
There is provided an infrared ray reflective substrate including an infrared ray reflective layer, a protective layer disposed on a surface of the infrared ray reflective layer and a transparent substrate that supports the infrared ray reflective layer from a rear surface side thereof, wherein the protective layer is formed from a polycycloolefin layer.
Abstract:
A transparent conductive film comprising: an organic polymer film substrate; an Al2O3 thin film formed on the organic polymer film substrate; and a ZnO-based thin film that is formed on the Al2O3 thin film and comprises ZnO doped with at least one of Ga and Al. The transparent conductive film has a low resistance value, even when the thickness of the ZnO-based thin film is reduced (particularly to about 150 nm or less), and shows a low rate of resistance change even in a hot and humid environment.
Abstract translation:一种透明导电膜,包括:有机聚合物膜基材; 形成在有机聚合物膜基材上的Al 2 O 3 O 3薄膜; 以及形成在Al 2 O 3 N 3薄膜上的ZnO基薄膜,并且包括掺杂有Ga和Al中的至少一种的ZnO。 即使在ZnO系薄膜的厚度(特别是约150nm以下)下,透明导电膜也具有低电阻值,即使在炎热,潮湿的环境下也显示出低的电阻变化率。
Abstract:
A polarizing plate is disclosed, comprising a polarizing film and a protective layer bonded through an adhesive layer to at least one surface of the polarizing film, wherein the protective layer is a polyester film in which the minimum or maximum refractive index in a direction in parallel with the plane of the film is nearly equal to that in the direction of the film thickness and the retardation is at least 10 .mu.m. On this polarizing plate, colored interference fringes are not formed at all even if it is looked at from any direction. Thus, the polarizing plate is suitable for use in the circumstance that it is exposed to the air, or in a display wherein a liquid crystal is used.
Abstract:
A transparent conductive film comprising: an organic polymer film substrate; an Al2O3 thin film formed on the organic polymer film substrate; and a ZnO-based thin film that is formed on the Al2O3 thin film and comprises ZnO doped with at least one of Ga and Al. The transparent conductive film has a low resistance value, even when the thickness of the ZnO-based thin film is reduced (particularly to about 150 nm or less), and shows a low rate of resistance change even in a hot and humid environment.
Abstract translation:一种透明导电膜,包括:有机聚合物膜基材; 形成在有机聚合物膜基材上的Al 2 O 3薄膜; 以及形成在所述Al 2 O 3薄膜上并且包含掺杂有Ga和Al中的至少一种的ZnO的ZnO基薄膜。 即使在ZnO系薄膜的厚度(特别是约150nm以下)下,透明导电膜也具有低电阻值,即使在炎热,潮湿的环境下也显示出低的电阻变化率。
Abstract:
A transparent conductive laminate having a completely crystallized, transparent conductive layer on a substrate comprising an organic polymer molding, and a process for producing the same. The transparent conductive layer is excellent in transparency and wet heat confidence and is not excessively low in specific resistivity. The transparent conductive laminate includes a substrate comprising an organic polymer molding having formed thereon a completely crystallized, transparent conductive layer comprising an In.Sn composite oxide having an amount of Sn atom of 1 to 6% by weight based on the total weight of In atom and Sn atom and having a film thickness of 15 to 50 nm, a Hall mobility of 30 to 45 cm2/V·S, and a carrier density of from 2×1020/cm3 to 6×1020/cm3.
Abstract:
In a transparent laminate, n thin-film units (n=3 or 4) are laminated unit by unit successively on a surface of a substrate, and a high-refractive-index transparent thin film is deposited on a surface of the laminate of the n thin-film units, each of the n thin-film units consisting of a high-refractive-index thin film and a silver transparent conductive thin film. When the silver transparent conductive thin films are deposited by a vacuum dry process, the temperature T(K) of the transparent substrate at the time of film deposition is set to be in a range 340≦T≦410, whereby the transparent laminate having a standard deviation of visible light transmittance which is not larger than 5% in a wave range of from 450 to 650 nm can be produced.