波音游戏-波音娱乐城赌球打不开

Localized dielectric breakdown and antireflection coating in metal–oxide–semiconductor photoelectrodes

sam

Dr. Sam H.Y. Hsu, Assistant Professor, has developed a general method for re-solving the trade-off between effciency and stability of metal–insulator–semiconductor photoelectrodes by employing dielectric breakdown for solar fuel application published on Nature Materials this year. This work has been featured on the front cover of the January 2017 Volume 16 No 1 issue of Nature Materials, http://www.nature.com/nmat/journal/v16/n1/covers/index.html. Dr. Sam collaborated with Researchers in Microelectronic Research Center, Department of Electrical and Computer Engineering, The University of Texas at Austin, launching the metal–insulator–semiconductor architecture utilizing the breakdown process. This idea solves the instability problem in silicon-based material without reducing the solar to energy conversion efficiency. Localized electrically conducting filament that was firstly created in metal–insulator–semiconductor photoelectrodes by Dr. Sam, allows photogenerated carriers in the semiconductor to flow easily to the metal catalyst layer.

Based on previous study from other scientists, the construction method in the insulator layer results in low efficiency and unsatisfactory stability. According to the Dr. Sam’s discovery, the charge carrier could go through the insulated layer no matter how thick it is, therefore this finding provides an alternative pathway that allows unstable semiconductor to generate clean fuels effectively via solar water splitting. The study concluded the conducting filament acts as a ‘highway’ for electron to pass through the insulator layer and reach to the conducting layer, so that the silicon-based semiconductor has no direct contact with the electrolyte to avoid decomposition under the photoelectrogenerated redox reaction.

This promising idea could be applied generally to the solar-fuel device as the strong method for converting water to storable clean fuels, helping to reduce the use of fossil fuel and providing a blueprint for the related fields.

如何打百家乐官网的玩法技巧和规则 | 百家乐官网一直下注庄家| 百家乐21点德州扑克| 澳门百家乐必杀技| 大发888被查封| 钱百家乐官网取胜三步曲| 百家乐送钱平台| 巨星百家乐官网的玩法技巧和规则| 免费百家乐统计工具| 百家乐赢法口诀| 皇冠现金开户| 青鹏百家乐游戏币| 新利| 洛克百家乐官网的玩法技巧和规则 | 大发888易发| 网络百家乐官网模拟投注| 大发888 注册账号| 澳门百家乐现场游戏| 总统娱乐城能赢钱吗| 新世纪百家乐官网的玩法技巧和规则 | 百家乐官网庄闲必胜打| 大发888娱乐城账号| 休闲百家乐官网的玩法技巧和规则| 百家乐官网游戏解密| 百家乐澳门技巧| 百家乐的保单打法| 高档百家乐官网桌| 大发888怎么进不去| 大众百家乐的玩法技巧和规则| 百家乐赢钱好公式| 百家乐官网代理| 新葡京娱乐城怎么样| 免费百家乐追号工具| 百家乐长龙怎么预判| 做生意风水门面要求| 百家乐官网发牌器8副| 清涧县| 百家乐扫描技术| 百家乐牌数计算法| 百家乐下注技术| 百家乐官网网站源码|