Abstract:
The present invention provide a lipophilic laminate including a substrate and a lipophilic resin layer on the substrate, wherein the lipophilic resin layer has micro convex portions or micro concave portions in a surface thereof and contains filler particles, and when parts of the filler particles are exposed from the lipophilic resin layer, the rate of exposed portions of the filler particles relative to the surface of the lipophilic resin layer is 0.1% or more.
Abstract:
For transparent electrodes formed by using a metal nanowire-based transparent conductive film, accomplished are simplification of processes necessary in patterning the transparent conductive film and improvement in patterning accuracy of the transparent electrodes formed by using the transparent conductive film. An ink for forming the transparent conductive film used for the transparent electrodes having a distance between the electrodes of 20 μm or more contains: metal nanowires, a photosensitive material; and a solvent. The metal nanowires have an average length of 1.5 times or less the distance between the electrodes.
Abstract:
The thiol group-containing colored compound includes a chromophore having absorption in a visible light region, a thiol group, and a spacer provided between the chromophore and the thiol group. The spacer is a chain alkylene group having 2 to 30 carbon atoms, a cyclic alkylene group having 3 to 30 carbon atoms, or a derivative of either alkylene group in which the number of carbon atoms in an additional structure of the alkylene group is equal to or less than the number of carbon atoms in the alkylene group.
Abstract:
A transparent conductive element includes a base having a first surface and a second surface, and a transparent electrode pattern part and a transparent insulating pattern part formed on at least one of the first surface and the second surface. The transparent electrode pattern part and the transparent insulating pattern part are laid alternately on a base surface. Plural pore portions are randomly formed apart in the transparent electrode pattern part and plural island portions are randomly formed apart in the transparent insulating pattern part.
Abstract:
Provided is a dispersion liquid that enables formation of a transparent conductive film in which diffuse reflection of light by the surfaces of metal nanowires is prevented while maintaining good transparency, and in which yellow coloring is suppressed to provide the transparent conductive film with excellent external appearance. The dispersion liquid contains metal nanowires and a colored compound adsorbed onto the metal nanowires. A transmission b* value of a transparent conductive film formed from the dispersion liquid is no greater than 0.7.
Abstract:
A transparent conductive film including metal nanowires and a colored compound adsorbed by the metal nanowires is provided. The metal nanowires are a material which absorbs light in the visible light region, and also each has a functional group which is bound to a metal constituting the metal nanowire.
Abstract:
Provided are metal nanowires having a high total light transmittivity that efficiently inhibit scattering of external light at a display screen such as a touch panel, and improve black floating prevention (photopic contrast) and electrode pattern non-visibility. Also provided are a transparent conductive film including the metal nanowires, a method for producing the transparent conductive film, a dispersion liquid including the metal nanowires, an information input device including the transparent conductive film, and an electronic device including the transparent conductive film. The metal nanowires include metal nanowire bodies and a colored compound adsorbed onto the metal nanowire bodies. The colored compound is a dye and is adsorbed in an amount of from 0.5 mass % to 10 mass % relative to the metal nanowire bodies.
Abstract:
Provided is a metal nanowire-containing transparent conductive film that can efficiently inhibit scattering of external light at a display screen such as a touch panel, and improve black floating prevention (photopic contrast) and electrode pattern non-visibility. Also provided are a method for producing the transparent conductive film, an information input device including the transparent conductive film, and an electronic device including the transparent conductive film. The transparent conductive film includes one or more metal nanowires and the number of metal nanowire bundle structures present in the transparent conductive film is 3 or fewer per each rectangular area region of 30 μm in height and 40 μm in width of the transparent conductive film.
Abstract:
An optical body has an anti-reflection function and can be produced without repeating sequential coating to stack a low refractive index layer and a high refractive index layer. The optical body having an anti-reflection function includes a minute concave-convex surface having fluctuations. The minute concave-convex surface has an arithmetic average roughness Ra of smaller than or equal to 25 nm.
Abstract:
An anti-fogging and anti-fouling laminate including: a substrate; a primer layer; and an anti-fogging and anti-fouling layer having a flat surface, wherein an average thickness of the primer layer is more than 0.5 μm, the anti-fogging and anti-fouling layer has Martens hardness of 10 N/mm2 or more, a coefficient of kinetic friction of 0.40 or less, and an average thickness of 10 μm or more, the anti-fogging and anti-fouling layer is a cured product of an active energy ray curable resin composition including a hydrophilic monomer, a crosslinking agent, and a hydrophobic monomer, a content of the crosslinking agent in the active energy ray curable resin composition is 5% by mass to 40% by mass relative to non-volatile matter thereof, and a content of the hydrophobic monomer in the active energy ray curable resin composition is 0.001% by mass to 10% by mass relative to the non-volatile matter.