Abstract:
There is provided a light emitting diode (LED) lens for double-sided lighting, including a light diffusion agent diffused therein, the LED lens including a light receiving portion receiving light, a first light transmitting portion corresponding to the light receiving portion and transmitting a portion of the light in an upward direction therefrom, a reflective portion extended from the first light transmitting portion and reflecting a portion of the light, and a second light transmitting portion facing the first light transmitting portion and transmitting the light reflected by the reflective portion in a downward direction therefrom.
Abstract:
Disclosed is a photo sensor including a first conductive type semiconductor substrate, a photodiode region in a light receiving region of the semiconductor substrate, a first transistor including a first gate, a first source region and a first drain region, the first transistor being adjacent to the photodiode region, and a light-absorption control layer in a first region of the photodiode region, the light-absorption control layer exposing a second region of the photodiode region, wherein the first region is spaced apart from the first source region, and the second region is another portion of the photodiode region contacting the first source region.
Abstract:
Disclosed herein is an inertial sensor. An inertial sensor 100 according to a preferred embodiment of the present invention includes a plate-shaped membrane 110, a mass body 130 that is provided under a central portion 111 of the membrane 110 and includes an integrated circuit, and a post 140 that are provided under an edge 112 of the membrane 110 to surround the mass body 130, whereby the overall thickness and area of the inertial sensor can be reduced by including the integrated circuit in the mass body 130 to implement a thin and small inertial sensor 100.
Abstract:
A rechargeable lithium battery includes a positive electrode including a positive active material; a negative electrode including a negative active material; an electrolyte including a lithium salt and a non-aqueous organic solvent; and a separator interposed between the positive and negative electrodes and including a ceramic material having a first metal oxide-containing core and a second metal oxide shell disposed on the surface of the core.
Abstract:
Disclosed herein is an inertial sensor of the present invention. An inertial sensor 100 according to a preferred embodiment of the present invention includes a plate-shaped membrane 110, a mass body 120 disposed under a central portion 113 of the membrane 110, a post 130 disposed under an edge 115 of the membrane 110 and surrounding the mass body 120, a piezoelectric material 140 formed above the membrane 110 and provided with a cavity 141 in a thickness direction, a sensing electrode 150 disposed in the cavity 141 and a driving electrode 160 disposed outside the cavity 141, whereby the thickness of the piezoelectric material 140 of the portion on which the sensing electrode 150 is disposed is formed to be thin, such that the sensitivity of the inertial sensor 100 can be improved.
Abstract:
Provided are a heat resistant, high strength acrylic copolymer and an optical film including the same, and more particularly, an acrylic copolymer polymerized by including (1) an alkyl(meth)acrylate-based monomer excluding a tert-butyl(meth)acrylate-based monomer, (2) a (meth)acrylate-based monomer including an aliphatic ring and/or an aromatic ring, and (3) a tert-butyl(meth)acrylate-based monomer. The acrylic copolymer according to the present invention has excellent heat resistance as well as transparency being maintained. Also, the optical film including a compounding resin including the acrylic copolymer has excellent transparency, heat resistance, processability, adhesiveness, retardation properties, and durability.
Abstract:
Disclosed is a MEMS variable capacitor, the capacitor including a first electrode, a second electrode that is floated on an upper surface of the first electrode, and a third electrode capable of variably-adjusting a capacitance value by adjusting a gap between the first electrode and the second electrode.
Abstract:
A graphics processing method and devices using the same is provided. The method includes receiving a plurality of texels arranged in a tiled format and rearranging, by a graphics processing unit (GPU), texels into a sequential format. In a tiled format, texels may be arranged in tiles, at least one tile including M×N texels. In the sequential format, the texels may be arranged in a scan line order of a display.
Abstract:
An image sensor and a method of manufacturing an image sensor. An image sensor may include a readout circuitry having a metal line on and/or over a first substrate. An image sensor may include an image sensing part having a first conductive-type conductive layer and/or a second conductive-type conductive layer over a metal line. An image sensor may include a pixel division area formed on and/or over an image sensing part corresponding to a pixel boundary. An image sensor may include a ground contact on and/or over a pixel division area. An image sensor may include a contact plug connected with a sidewall of an image sensing part. A method of manufacturing an image sensor is disclosed.
Abstract:
The present invention relates to an O/W type cosmetic composition with improved formulation stability, and more particularly, to an O/W type cosmetic composition comprising a branched polymer having a lipophilic alkyl side chain and an anionic surfactant, as active ingredients for improving formulation stability.