Abstract:
Provided is a solar cell including a semiconductor substrate having a first conductivity type; a semiconductor layer having a second conductivity type and disposed on one surface of the semiconductor substrate; a passivation layer disposed on the other surface of the semiconductor substrate; a front electrode disposed on the semiconductor layer; and a back electrode disposed on the passivation layer, wherein the passivation layer comprises a plurality of silicon layers having different crystallinity.
Abstract:
Provided embodiments are a thin film including a support material and nano particles having different density from that of the support material, and a method for manufacturing the same. Due to the density difference, the nano particles are intensively concentrated on an upper or lower part of the support material. The inventive concept also discloses a thin film capable of increasing surface roughness and a method for manufacturing the same. The thin film includes a support material, and particles contained therein. The particles may have lower density than that of the support material, and increase surface roughness at an upper part of the support material.
Abstract:
Provided is an apparatus for monitoring a gas and plasma process equipment including the same. The apparatus includes: a housing including a gas inflow hole, a gas discharge hole, and windows; a light source disposed adjacent to one of the windows outside the housing to provide source light to a gas supplied between the gas inflow hole and the gas discharge hole; a sensor disposed adjacent to the other of the windows outside the housing to detect fluorescence emitted from the gas by the source light; and a coil disposed in the housing between the gas inflow hole and the gas discharge hole to heat and decompose the gas between the light source and the sensor, thereby increasing the fluorescence emitted from the gas.
Abstract:
Provided are solar cell and a solar cell module including the same. The solar cell includes a first light conversion layer, a lower electrode layer disposed on the first light conversion layer, a light absorption layer disposed on the lower electrode layer to absorb solar light, and an upper electrode layer disposed on the light absorption layer. Here, the first light conversion layer includes a lower refraction layer through which the solar light is transmitted and first light conversion particles absorbing refracted light, in which the solar light is refracted by the lower refraction layer, to generate first emission light.
Abstract:
Provided is method of manufacturing a conductive film. The method includes forming a conductive film including a plurality of flakes on a substrate, wherein the conductive film is a semiconductor or a conductor, and forming a passivation region selectively on a boundary between the flakes adjacent to each other. The passivation region includes a metal compound selected from the group consisting of metal chalcogenide and transition metal chalcogenide. The forming of the passivation region includes providing a solution containing a first precursor including a cation of the metal compound and a second precursor including an anion of the metal compound on the conductive film. pH of the solution is between 7.0 and 10.0.
Abstract:
An electro spinning apparatus according to embodiments of the inventive concept includes a nozzle unit discharging nano fiber on a substrate, and an alignment device having the substrate disposed thereon and aligning the nano fiber, wherein the alignment device includes a body and an angle adjustment unit adjusting an angle formed by a straight line connecting two electrodes disposed to face each other among the electrodes and the substrate.
Abstract:
Provided is a method for manufacturing a conductive film. The method for manufacturing a conductive film includes providing a polymer thin-film on a base film, treating the polymer thin-film by using 10 M to 15 M of nitric acid, and washing the polymer thin-film treated with nitric acid. The nitric acid treatment is performed at room temperature for about 7 minutes to about 13 minutes.
Abstract:
Provided are a transparent solar cell and a rear-reflective transparent solar cell module having the same. The transparent solar cell includes a transparent substrate, a first transparent electrode on the transparent substrate, a light absorption layer on the first transparent electrode, a re-absorption enhancing layer on the light absorption layer, and a second transparent electrode on the re-absorption enhancing layer.
Abstract:
Provided is a memory device including a gate electrode, a first insulation layer on the gate electrode, a first conductive pattern and a second conductive pattern, which are spaced apart from each other on the first insulation layer, a channel pattern disposed on the first insulation layer to connect the first conductive pattern and the second conductive pattern, and an interface layer disposed between the channel pattern and the first insulation layer and having a hydrogen atom content ratio (atomic %) greater than that of the first insulation layer.
Abstract:
Provided are a solar cell and a method of manufacturing the same. The solar cell includes a substrate, a first electrode on the substrate, a second electrode on the first electrode, and at least one semiconductor layer interposed between the first and second electrodes, and a first connection layer interposed between the first electrode and the semiconductor layer and electrically connecting the first and second electrodes to each other. The first connection layer includes a plurality of two-dimensional layers vertically extending from a top surface of the first electrode to a bottom surface of the semiconductor layer. The two-dimensional layers include a metal compound.