The relation between threshold voltage for hydrogenated amorphous silicon thin film transistors (a-Si:H TFTs) and deposition conditions for hydrogenated amorphous silicon nitride (a-SiN x :H) films is investig...The relation between threshold voltage for hydrogenated amorphous silicon thin film transistors (a-Si:H TFTs) and deposition conditions for hydrogenated amorphous silicon nitride (a-SiN x :H) films is investigated.It is observed that the threshold voltage, V th ,of a-Si:H TFT increases with the increase of the thickness of a-SiN x :H film,and the threshold voltage is reduced apparently with the increase of NH 3/SiH 4 gas flow rate ratio.展开更多
A general method is developed to prepare durable hybrid nanocatalysts by nanostructuring the surface of gold wires via simple alloying and dealloying. The resulting nanoporous gold/Au (NPG/Au) wire catalysts possess...A general method is developed to prepare durable hybrid nanocatalysts by nanostructuring the surface of gold wires via simple alloying and dealloying. The resulting nanoporous gold/Au (NPG/Au) wire catalysts possess nanoporous skins with their thicknesses on robust metal wires specified in a highly controllable manner. As a demonstration, the as-obtained NPG/Au was shown to be a highly active, chemo-selective, and recyclable catalyst for the reduction of nitro com- pounds and azides using organosilanes as reducing agents.展开更多
文摘The relation between threshold voltage for hydrogenated amorphous silicon thin film transistors (a-Si:H TFTs) and deposition conditions for hydrogenated amorphous silicon nitride (a-SiN x :H) films is investigated.It is observed that the threshold voltage, V th ,of a-Si:H TFT increases with the increase of the thickness of a-SiN x :H film,and the threshold voltage is reduced apparently with the increase of NH 3/SiH 4 gas flow rate ratio.
文摘A general method is developed to prepare durable hybrid nanocatalysts by nanostructuring the surface of gold wires via simple alloying and dealloying. The resulting nanoporous gold/Au (NPG/Au) wire catalysts possess nanoporous skins with their thicknesses on robust metal wires specified in a highly controllable manner. As a demonstration, the as-obtained NPG/Au was shown to be a highly active, chemo-selective, and recyclable catalyst for the reduction of nitro com- pounds and azides using organosilanes as reducing agents.