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纳米形貌光电电极的光电催化进展。

Advances in photoelectrocatalysis with nanotopographical photoelectrodes.

机构信息

Institute for Solar Fuels and Energy Storage Materials, Helmholtz-Zentrum Berlin für Materialien und Energie, Glienicker Strasse 100, 14109 Berlin, Germany.

出版信息

Chemphyschem. 2010 Jun 7;11(8):1603-15. doi: 10.1002/cphc.200900856.

Abstract

The design of photoelectrodes for high efficiency solar fuel energy conversion devices is based on the search for adequate surface conditioning to achieve efficient light harvesting, stability, minimized surface recombination losses and high electron-transfer rates at the electrolyte interface. An overview on established and novel approaches is given. A recent viable solution is provided by electroplating of nanoscale catalytic metals on passivated semiconductor surfaces, thereby forming reactive centers and avoiding contact between the semiconductor surface and the electrolyte. At these nano-dimensioned Schottky-type junctions, light-induced excess minority carriers are scavenged and transferred to the electrolyte. Various possible device configurations are outlined and envisaged systems for hydrogen or oxygen evolution and carbon dioxide reduction are presented. The role of ultrathin passivating films is emphasized and methods to fabricate open as well as compact conformal films are described.

摘要

高效太阳能燃料能量转换器件光电电极的设计基于寻求合适的表面处理方法,以实现高效的光捕获、稳定性、最小化的表面复合损耗以及在电解质界面处的高电子转移速率。文中概述了已建立的和新颖的方法。最近可行的解决方案是在钝化半导体表面上电沉积纳米级催化金属,从而形成反应中心并避免半导体表面与电解质接触。在这些纳米尺寸的肖特基型结中,光致产生的少数载流子被清除并转移到电解质中。概述了各种可能的器件结构,并提出了用于析氢、析氧和二氧化碳还原的设想系统。强调了超薄钝化膜的作用,并描述了制备开放和紧密共形膜的方法。

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