Abstract:
A heterocyclic compound, an organic light-emitting diode, and a flat display device, the heterocyclic compound being represented by Formula 1, below:
Abstract:
A graphene electronic device includes a multi-layered gate insulating layer between a graphene channel layer and a gate electrode. The multi-layered gate insulating layer includes an organic insulating layer and an inorganic insulating layer on the organic insulating layer.
Abstract:
FINFET ICs and methods for their fabrication are provided. In accordance with one embodiment a FINFET IC is fabricated by forming in a substrate a region doped with an impurity of a first doping type. The substrate region is etched to form a recess defining a fin having a height and sidewalls and the recess adjacent the fin is filled with an insulator having a thickness less than the height. Spacers are formed on the sidewalls and a portion of the insulator is etched to expose a portion of the sidewalls. The exposed portion of the sidewalls is doped with an impurity of the first doping type, the exposed sidewalls are oxidized, and the sidewall spacers are removed. A gate insulator and gate electrode are formed overlying the fin, and end portions of the fin are doped with an impurity of a second doping type to form source and drain regions.
Abstract:
The present disclosure relates to an apparatus for controlling a virtual machine in a device. The apparatus comprises a virtualization requesting part and a controlling part. The virtualization requesting part is configured to transmit a first instruction word for controlling the virtual machine to an independent virtualization apparatus. The controlling part is configured to execute an operation corresponding to a second instruction word received from the virtualization apparatus.
Abstract:
An organic light emitting diode display capable of reducing the shortening of image stacking lifetime caused by the residue of the barrier ribs produced during the forming of the barrier ribs is provided. The display includes: a substrate; a first pixel electrode formed on the substrate; barrier ribs formed on the substrate, and having an opening exposing the first pixel electrode; a second pixel electrode formed on the first pixel electrode; an organic light emitting member formed on the second pixel electrode; an organic light emitting member formed on the second pixel electrode; a common electrode formed on the organic light emitting member; and a thin film encapsulation member covering the common electrode. The width of the second pixel electrode is greater than the exposure width of the first pixel electrode exposed through the opening of the barrier ribs.
Abstract:
An organic light emitting diode device includes a substrate, a thin film transistor on the substrate, a first pixel electrode electrically connected to the thin film transistor, a pixel defining layer on the first pixel electrode and partitioning a light emitting region, a second pixel electrode contacting the first pixel electrode at the light emitting region, a light emitting layer contacting the second pixel electrode at the light emitting region, and a common electrode on the light emitting layer; and a method of manufacturing the same is provided.
Abstract:
A method of installing printer drivers of image forming apparatuses in an environment that employs a universal printer driver is provided. Accordingly, it is possible to provide an environment for using printer drivers of image forming apparatuses that is convenient to a user by deleting printer drivers of image forming apparatuses that were previously installed by using the universal printer driver and by installing printer drivers of image forming apparatuses corresponding to a predetermined standard.
Abstract:
A switch apparatus of a Field Programmable Gate Array (FPGA) includes a pass transistor configured to switch and transfer an input signal to a logic cell according to a value of a configuration memory, and a voltage maintaining unit connected between the configuration memory and a gate of the pass transistor and configured to delay a drop of a gate voltage.
Abstract:
A light emitting diode floodlight includes a hollow housing, a lens, a cover, a light source, an illumination reflector, an intermediate portion, and a power source. The cover is coupled to the end of the housing and configured to hold and support the lens. The light source has a pyramidal frustum-shaped portion installed at an opposite end of the housing. The illumination reflector is installed within the housing so as to surround a periphery of the pyramidal frustum-shaped portion of the light source. The intermediate portion is connected to a first heat sink of the light source and has a second heat sink on an outer peripheral surface thereof. The power source has a power supply electrically connected to the light source.
Abstract:
Disclosed herein is a heat dissipation device for a power conversion module. The device includes a casing, a high-heat-dissipation heat sink and a circuit board. The casing includes a heat-dissipation fin unit which has heat dissipation fins arranged at positions spaced apart from each other by predetermined intervals. The casing has a mounting space therein. The high-heat-dissipation heat sink is installed in the mounting space of the casing. The circuit board is coupled to a lower surface of the casing. Therefore, the weight and size of the heat dissipation device can be reduced. In addition, the heat sink and the casing having the heat dissipation fins dissipate heat at the same time, thus enhancing the heat dissipation efficiency. Moreover, in an optimal design, the high-heat-dissipation heat sink is located at a position corresponding to a part which generates high heat so that the heat dissipation efficiency can be maximized.