Abstract:
A light-control member (13) includes a substrate (39); light-shielding layers (40) provided in a first area (A1) on one surface (39a) of the substrate (39); a light-diffusion section (41) provided in an area other than the light-shielding layers (40) in the first area (A1) and formed of light transmitting material; and a support section(45) provided in a second area (A2) positioned on an outer side of the first area (A1) on the one surface (39a), in which the light-diffusion section (41) has a light emitting end surface (41a) in contact with the one surface (39a) of the substrate (39), a light incident end surface (41b) opposing the light emitting end surface (41a) and having an area greater than an area of the light emitting end surface (41a), and a reflective surface (41c) which is in contact with the light emitting end surface (41a) and the light incident end surface (41b) and on which light incident from the light incident end surface (41b) is reflected, and a formation area of the support section (45) per unit area in the second area (A2) is greater than a formation area of the support section (45) per unit area in the first area (A1).
Abstract:
A light control member of the invention includes a light-transmissive first substrate, a light diffusing portion which is formed on a first surface of the first substrate, and a light shielding layer which is formed in a region other than a region in which the light diffusing portion is formed on the first surface of the first substrate. The light diffusing portion includes a light emitting end surface being in contact with the first substrate, and a light incident end surface opposite the light emitting end surface and having an area larger than an area of the light emitting end surface, and is configured such that a height from the light incident end surface to the light emitting end surface is larger than a layer thickness of the light shielding layer. The light shielding layer includes an enlarged portion in a portion of the light shielding layer in a layer thickness direction, the enlarged portion being configured such that a sectional area which is cut by a plane parallel to the first surface of the first substrate is larger than an area of a substrate side end surface of the light shielding layer.
Abstract:
A liquid crystal display device according to one aspect of the present invention includes a liquid crystal panel of a vertical alignment mode, and an optical control member disposed on a light-exiting side of the liquid crystal panel. The liquid crystal panel includes a plurality of pixels having at least two domains (50a, 50b), in which directors of liquid crystal molecules are in a first direction. An absorption axis of a first polarizing sheet and an absorption axis of a second polarizing sheet are a mutually orthogonal and form angle that is approximately 45°. The optical control member includes a base, a light diffusion part, a light blocking layer and a low refractive index part. A planar shape of the light blocking layer (40) when seen from a normal line direction of the base has a straight line part parallel to the absorption axis (P1, P2) of one of the first polarizing sheet and the second polarizing sheet and a straight line part forming an angle of less than 45° with the absorption axis (P1, P2) of one polarizing sheet.
Abstract:
According to an aspect of the present invention, there is provided a light diffusion member which includes a light diffusion film, a polarizing film, and a retardation film. The light diffusion film includes a first substrate, a light diffusion portion, and a light shielding layer. The polarizing film includes a second substrate and a polarization layer. The retardation film includes a third substrate and a retardation layer. The retardation layer is formed from a birefringence body which has optically-negative uniaxiality. An alignment direction of the birefringence body is different in a thickness direction thereof. A slow axis of the retardation layer is positioned at azimuth between a transmission axis and an absorption axis of the polarization layer.
Abstract:
A light-diffusing-member manufacturing method includes a step of forming a light diffusion portion on one surface side of a base, by developing an exposed negative photosensitive resin layer with an alkali developing solution, and a step of performing an acid treatment on the light diffusion portion with an acid solution, after removing the alkali developing solution which is adhered to the light diffusion portion and suspended matter in the alkali developing solution in the negative photosensitive resin layer, so as to lower an ionization degree of the negative photosensitive resin layer which is in an ionized state due to the alkali developing solution.
Abstract:
A light dispersion member includes a substrate having optical transparency, a light diffusion portion formed with a predetermined height on one surface of the substrate, light shielding layers formed with a thickness smaller than the height of the light diffusion portion in regions other than the light diffusion portion within the one surface of the substrate, and a buffer layer formed on the surface on the opposite side of the light diffusion portion to the surface thereof facing the substrate, the light diffusion portion has a light emitting end surface contacting the substrate and a light incident end surface opposing the light emitting end surface and having a larger area than the area of the light emitting end surface a, and the buffer layer, by elastically deforming when pressure is applied from the substrate side, relaxes pressure applied to the light diffusion portion.