摘要:
According to some embodiments of the invention, a substrate doped with a P type impurity is provided. An N type impurity is doped into the substrate to divide the substrate into a P type impurity region and an N type impurity region. Active patterns having a first pitch are formed in the P type and N type impurity regions. Gate patterns having a second pitch are formed on the active patterns in a direction substantially perpendicular to the active patterns. Other embodiments are described and claimed.
摘要:
According to some embodiments of the invention, a substrate doped with a P type impurity is provided. An N type impurity is doped into the substrate to divide the substrate into a P type impurity region and an N type impurity region. Active patterns having a first pitch are formed in the P type and N type impurity regions. Gate patterns having a second pitch are formed on the active patterns in a direction substantially perpendicular to the active patterns. Other embodiments are described and claimed.
摘要:
According to some embodiments of the invention, a substrate doped with a P type impurity is provided. An N type impurity is doped into the substrate to divide the substrate into a P type impurity region and an N type impurity region. Active patterns having a first pitch are formed in the P type and N type impurity regions. Gate patterns having a second pitch are formed on the active patterns in a direction substantially perpendicular to the active patterns. Other embodiments are described and claimed.
摘要:
According to some embodiments of the invention, a substrate doped with a P type impurity is provided. An N type impurity is doped into the substrate to divide the substrate into a P type impurity region and an N type impurity region. Active patterns having a first pitch are formed in the P type and N type impurity regions. Gate patterns having a second pitch are formed on the active patterns in a direction substantially perpendicular to the active patterns. Other embodiments are described and claimed.
摘要:
According to some embodiments of the invention, a substrate doped with a P type impurity is provided. An N type impurity is doped into the substrate to divide the substrate into a P type impurity region and an N type impurity region. Active patterns having a first pitch are formed in the P type and N type impurity regions. Gate patterns having a second pitch are formed on the active patterns in a direction substantially perpendicular to the active patterns. Other embodiments are described and claimed.
摘要:
An apparatus for creating an EUV light may include a droplet-supplying unit, a laser-irradiating unit, a light-concentrating unit and a guiding unit. The droplet-supplying unit may supply a droplet from which the EUV light may be created. The laser-irradiating unit may irradiate a laser to the droplet supplied from the droplet-supplying unit to create the EUV light. The light-concentrating unit may concentrate the EUV light created by the laser-irradiating unit. The guiding unit may guide the droplet to a position at which the laser may be irradiated. The guiding unit may have at least one gas-spraying hole for spraying a gas to a space between the droplet-supplying unit and the laser irradiation position to form a gas curtain configured to surround the droplet.
摘要:
Provided are a device and method for performing handover by detecting a state of another wireless network when only a wireless access interface for a current access network is activated in a mobile terminal. A handover controller performs communication between a mobile terminal performing a single radio handover and an information server managing access information for each wireless network. The handover controller obtains multi RAT access information used for accessing a network accessible at a current position of the mobile terminal. The handover controller obtains a network quality measurement result, which is measured using the multi RAT access information, from the mobile terminal, and determines a target network of the mobile terminal by using the network quality measurement result.
摘要:
The present invention relates to a method in which a mobile node having mobility performs handover in a mobile communication system, and more particularly, to a fast handover method and system using network-based localized mobility management. According to an exemplary embodiment of the present invention, in a network access process between a mobile node and a base station, the base station sends a message allowing network access to the mobile node and a link-up message to an access router. Then, the access router sends a location registration message, which includes a mobile node identifier, a target base station identifier, a localized mobility anchor identifier, and access permission flag information, to a localized mobility anchor (LMA), and receives an acknowledgement (Ack) message including network prefix information. Accordingly, when a router advertisement (RA) message is sent to the base station, the mobile node performs duplicate address detection (DAD). Accordingly, fast handover is performed to reduce packet loss and delay that occur when the mobile node moves between networks, thereby minimizing the packet loss and delay.
摘要:
A method of manufacturing a mask includes dividing an upper surface of a template having a design pattern into a plurality of regions, the template being arranged over a polymer layer on a mask substrate, correcting a distorted region among the regions, pressing the polymer layer with the template to form a mask pattern corresponding to the design pattern on the polymer layer; and curing the mask pattern.
摘要:
An anti-reflection display window panel and a manufacturing method thereof, which includes: forming a master, wherein a glass or a silicon wafer substrate is subject to light irradiation and etching to form a fine nano-pattern; preparing a nickel core plate to have on its surface the same nano-pattern; preparing an IMD core mold for the anti-reflection by attaching the nickel core plate to a particle plate of a lower mold core in an anti-reflection core mold to expose the surface of the nickel core plate formed with said fine nano-pattern; and, performing an IMD injection molding, wherein molten resin with high temperature is introduced between an upper mold core and the lower mold core and then is subject to the performance of the injection molding with a fast heating and a fast cooling to produce an anti-reflection display window panel formed with the fine nano-pattern for anti-reflection.