Abstract:
An interconnecting member of a solar cell panel for connecting a plurality of solar cells, can include a core layer and a solder layer formed on a surface of the core layer, in which the core layer includes a protruding portion having a peak portion extending along a longitudinal direction of the core layer, and a reflection surface having an inclined surface or a rounded portion disposed at opposite sides of the peak portion, and a width of the protruding portion increases from the peak portion towards a center of the core layer.
Abstract:
A flux coating device for a solar cell panel, can include a flux bath configured to receive flux and having an inlet and an outlet, in which the inlet and the outlet of the flux bath are configured to pass an interconnector below a surface of the flux, and the interconnector can include a wiring material including: a rounded portion or a circular cross-section, a core layer, and a solder layer formed on a surface of the core layer.
Abstract:
Disclosed is a light emitting device. More specifically, disclosed are an organic electroluminescent device display and a method for manufacturing the same. The organic electroluminescent device display includes a substrate, an organic electroluminescent device disposed on the substrate, a sealing cap for sealing the organic electroluminescent device, and a getter disposed inside the sealing cap, the getter comprising a graphene layer.
Abstract:
The present invention relates to the manufacturing of a heteroelement thin film, and particularly to a method for manufacturing a metal chalcogenide thin film and the thin film manufactured thereby. The present invention, which relates to a method for manufacturing a metal chalcogenide thin film, may comprise the steps of: supplying a vaporized metal precursor; supplying a chalcogen-containing gas; and forming a thin film by reacting the metal precursor with the chalcogen-containing gas on a growth substrate at a first temperature condition.
Abstract:
Disclosed is graphene. More particularly, disclosed are a method for manufacturing graphene to grow graphene with high quality and graphene manufactured by the same. The method includes preparing a thermal-expansion compensation substrate, forming a metal layer on the thermal-expansion compensation substrate, and forming graphene on the metal layer.
Abstract:
A laundry treating apparatus includes a tub, a drum, and a rotator. The rotator includes a bottom portion positioned on a bottom surface of the drum, a pillar protruding from the bottom portion toward an open surface of the drum, and a blade disposed on an outer circumferential surface of the pillar. The blade extends obliquely with respect to a longitudinal direction of the pillar from one end thereof facing toward the bottom portion to the other end thereof facing toward the open surface, and a first mold line at least partially extending in parallel with a circumferential direction of the pillar is formed between said one end and the other end.
Abstract:
Disclosed is a method of manufacturing a light emitting device. More particularly, disclosed are a growth substrate, a nitride semiconductor device and a method of manufacturing a light emitting device. The method includes preparing a growth substrate including a metal substrate, forming a semiconductor structure including a nitride-based semiconductor on the growth substrate, providing a support structure on the semiconductor structure, and separating the growth substrate from the semiconductor structure.