Abstract:
One aspect of the present invention provides a laminate structure having two or more layers laminated, wherein at least two layers have a fine relief structure on surfaces thereof, a concave portion and a convex portion of a fine relief structure of an arbitrary layer are differently disposed from a concave portion and a convex portion of a fine relief structure of another at least one layer, and an interface is not release treated. Another aspect of the present invention provides a laminate structure having two or more layers laminated, wherein an outermost layer is a layer which does not have a fine relief structure on a surface thereof, and at least one layer other than the outermost layer has a fine relief structure on a surface thereof.
Abstract:
The present invention provides a diffuser plate assembly. The diffuser plate assembly includes a first diffuser plate and a second diffuser plate located under the first diffuser plate, and a gap is formed therebetween. Correspondingly, the present invention also provides a backlight comprising the diffuser plate assembly and a display device comprising the backlight. Compared with the prior art, the diffuser plate assembly provided by the present invention can enable light emitted by a light source to irradiate a display panel more uniformly, and the thicknesses of the backlight and the display device can be reduced.
Abstract:
An optical film or other optical body has a structured surface comprising Fresnel prisms. The Fresnel prisms define a complex topography. For example, a first and second Fresnel prism may have elongated first and second plan view shapes that form a “wye” (Y-shaped) feature. Alternatively or in addition, the Fresnel prisms may be arranged such that slopes of the Fresnel prisms define one or more saddle points. Furthermore, one or more of the Fresnel prisms may have prism shapes in plan view that include undulating portions, and the Fresnel prisms may be arranged in a slope sequence that defines one or more inflection points. The Fresnel prisms may be refractive or reflective, and they may provide the structured surface with a 3-dimensional appearance.
Abstract:
An opaque cover is provided for a capacitive sensor. The cover includes a transparent substrate, and at least one white coating layer including white pigments disposed over at least one portion of the transparent substrate. The cover also includes a non-conductive minor structure disposed over the at least one white coating layer. The non-conductive minor structure includes a number of first dielectric layers having a first refractive index interleaved with second dielectric layers having a second refractive index. The first and second dielectric layers have dielectric constants below a threshold.
Abstract:
A planar LED lighting device includes a reflective sheet comprising a reflective surface and a plurality of LEDs arranged on the reflective surface. Each LED comprises a light emitting surface. A plurality of first optical elements cover the LEDs. A plurality second optical elements face the first optical elements. Each second optical element has a total reflective surface facing a corresponding first optical element. A light diffusing sheet is located above the second optical elements. Light beams emitted from the LEDs are collimated by the first optical elements, then divergently reflected by the total reflective surfaces of the second optical elements to reach the reflective sheet, thereafter scattered and reflected by the reflective sheet and then travel to the light diffusing sheet to be diffused thereby. Finally, the diffused light beams leave the light diffusing sheet to an outside.
Abstract:
A device for scattering light, especially for vehicles, includes at least one translucent material and at least one light unit for generating a lighting function, characterized in that the translucent material is a light-scattering textile fabric, wherein the fabric is arranged in the device or is positioned in front of the device and is designed so that the lighting function shines through the fabric.
Abstract:
A variety of light-emitting devices for general illumination utilizing solid state light sources (e.g., light emitting diodes) are disclosed. In general, the devices include a scattering element in combination with an extractor element. The scattering element, which may include elastic and/or inelastic scattering centers, is spaced apart from the light source element. Opposite sides of the scattering element have asymmetric optical interfaces, there being a larger refractive index mismatch at the interface facing the light emitting element than the interface between the scattering element and the extractor element. Such a structure favors forward scattering of light from the scattering element. In other words, the system favors scattering out of the scattering element into the extractor element over backscattering light towards the light source element. The extractor element, in turn, is sized and shaped to reduce reflection of light exiting the light-emitting device at the devices interface with the ambient environment.
Abstract:
In one embodiment of the invention, a display is provided and includes a plurality of interferometric display elements. The display further includes at least one diffuser. Optical properties of the diffuser are selected to reduce color shift of the display when viewed from at least one angle.
Abstract:
The present invention relates to an anti-reflective coating film. This anti-reflective coating film shows more improved interface adhesion and scratch resistance, which can be manufactured by a simple process.
Abstract:
Light sources and methods for spreading a beam of electromagnetic radiation. The light sources include a scattering element with an outlet and an angular-selective element with an inlet spatially disposed between the outlet of the scattering element and an electromagnetic radiation source. The beam enters the inlet traveling in a direction of propagation and propagates through the beam spreader to the outlet for transmission from the outlet. The scattering element includes a scattering medium configured to scatter the electromagnetic radiation in the beam to provide a two-dimensional spatial distribution for intensity that is substantially uniformly across the outlet. The angular-selective element is configured to reflect a majority of the electromagnetic radiation of the first beam scattered by the scattering medium in a direction opposite to the propagation direction and reaching the angular-selective element.