Abstract:
An object is to coat a target position on a substrate with a dense film. In order to achieve the object, while a substrate on which a base containing a coating material is formed is transported, an auxiliary agent is applied to the substrate, and then a main agent containing a coating material is applied to the substrate to react the main agent with the auxiliary agent, so that a portion on the substrate where the base is formed is coated with the coating material.
Abstract:
Provided are an organic thin film transistor that has high bendability and can suppress a decrease in carrier mobility caused by a pinhole of an insulating film or leveling properties and a method of manufacturing the organic thin film transistor. The organic thin film transistor includes: a gate electrode; an insulating film that is formed to cover the gate electrode; an organic semiconductor layer that is formed on the insulating film, and a source electrode and a drain electrode that are formed on the organic semiconductor layer, in which the insulating film includes an inorganic film consisting of SiNH.
Abstract:
Provided are a functional composite film having one or more combinations of an inorganic layer and an underlying organic layer on one surface thereof, and having a light diffusion layer on the opposite surface, in which the light diffusion layer is formed by dispersing a light diffusing agent in a binder formed using a graft copolymer having a molecular weight of 10,000 to 3,000,000 and an acryl equivalent of 500 g/mol or more, which has an acrylic polymer as the main chain and at least one of a urethane polymer with an acryloyl group at a terminal or a urethane oligomer with an acryloyl group at a terminal in the side chain; and a wavelength conversion film using the same. Using these, a functional composite film and a wavelength conversion film, having good light diffusion performance and light transmittance are provided.
Abstract:
A laminate film includes a gas barrier film having a barrier layer and a support which supports the barrier layer stacked on one surface of an optical functional layer, in which the gas barrier film and the optical functional layer satisfy the following adhesion force conditions: an adhesion force between the support and the barrier layer is smaller than an adhesion force between the optical functional layer and the barrier layer, and an adhesion force between the support and the barrier layer is an adhesion force enabling peeling.
Abstract:
A functional film has a support which has a value of retardation of equal to or less than 50 nm; a protective inorganic film which is formed on the support; one or more combinations, each of which is composed of an organic film as an underlayer and an inorganic film, formed on the protective inorganic film; and a sealant layer which adheres onto the inorganic film as an uppermost layer by an adhesive layer, has a value of retardation of equal to or less than 300 nm, and has a glass transition temperature lower than that of the support.
Abstract:
The present disclosure provides a method of manufacturing a formed body for an electrode including: a step of preparing an electrode material containing an electrode active material; a step of supplying the electrode material onto the support; and a step of pressurizing the electrode material on the support by sandwiching the support and the electrode material between a first roll that is brought into contact with the electrode material and a second roll that is brought into contact with the support, in which a temperature T1 of the first roll and a temperature T2 of the second roll satisfy a relationship T1>T2.
Abstract:
A gas barrier film has, in sequence, a support, an inorganic layer disposed on one surface side of the support, an adhesive layer disposed on a surface of the inorganic layer, and a resin layer disposed on a surface of the adhesive layer in which the adhesive layer has a thickness of 15 μm or less, and the adhesion strength between the inorganic layer and the adhesive layer is 21 N/25 mm or more and 60 N/25 mm or less. A method for producing a gas barrier film includes an inorganic layer deposition step and a bonding step in a vacuum.
Abstract:
The present invention provides a gas barrier film of an organic-inorganic lamination type having good adhesiveness between an organic layer disposed between inorganic layers and a lower inorganic layer thereof, and a method of producing the gas barrier film. A gas barrier film having two or more combinations of an organic layer and an inorganic layer on one surface of a support, in which a surface of the support is the organic layer, an organic layer on the surface of the support is an underlying organic layer, an organic layer between the inorganic layers is an intermediate organic layer, a thickness of the intermediate organic layer is 0.05 to 0.5 μm, a ratio between the thickness of the intermediate organic layer and a thickness of the underlying organic layer is 0.1 or less, and the intermediate organic layer includes a polymer of (meth)acrylate represented by Formula (1).
Abstract:
A gas barrier film has a support, an inorganic layer and an organic layer on one surface of the support, and a light diffusion layer containing a binder and a light diffusion agent on the other surface of the support. The binder has a graft copolymer which has an acryl polymer as a main chain and a urethane polymer or a urethane oligomer having an acryloyl group terminal as a side chain, an acryl polymer which has methacrylate as a side chain, and a graft copolymer which has an acryl polymer as a main chain and a urethane polymer or a urethane oligomer having a polycarbonate group terminal as a side chain.
Abstract:
A barrier laminate includes a first organic layer, an inorganic layer, and a second organic layer in this order, in which the second organic layer is formed by curing a polymerizable composition which is directly applied to a surface of the inorganic layer, the polymerizable composition includes a urethane acrylate polymer, the urethane acrylate polymer has a structure which includes an acrylic main chain and a side chain including a urethane polymer unit or a urethane oligomer unit, and the side chain has an acryloyl group at a terminal.