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迈向高效光阳极:助力用于水氧化的阳光驱动半导体纳米材料

Towards highly efficient photoanodes: boosting sunlight-driven semiconductor nanomaterials for water oxidation.

作者信息

Gan Jiayong, Lu Xihong, Tong Yexiang

机构信息

KLGHEI of Environment and Energy Chemistry, MOE of the Key Laboratory of Bioinorganic and Synthetic Chemistry, School of Chemistry and Chemical Engineering, Institute of Optoelectronic and Functional Composite Materials, Sun Yat-Sen University, Guangzhou 510275, China.

出版信息

Nanoscale. 2014 Jul 7;6(13):7142-64. doi: 10.1039/c4nr01181c.

Abstract

Harvesting energy directly from sunlight is a very attractive and desirable way to solve the rising energy demand. In the past few decades, considerable efforts have been focused on identifying appropriate materials and devices that can utilize solar energy to produce chemical fuels. Among these, one of the most promising options is the construction of a photoelectrochemical (PEC) cell that can produce hydrogen fuel or oxygen from water. Significant advancement in the understanding and construction of efficient photoanodes to improve performance has been accomplished within a short period of time owing to various newly developed ideas and approaches, including facilitating charge transportation in narrow band gap semiconductors or doping in wide band gap semiconductors for enhancing visible-light absorption; electrocatalysts for decreasing overpotentials; controlling the morphology of the materials for enhancing light absorption and shortening the transfer distance of minority carriers; and other methods such as using heterojunction structures for band-structure engineering, sensitization, and passivating layers. In this review, we focus on the recent developments of some promising visible-light active photoanode materials with high PEC performance, such as BiVO4, α-Fe2O3, WO3, TaON, and Ta3N5.

摘要

直接从阳光中获取能量是解决不断增长的能源需求的一种非常有吸引力且令人向往的方式。在过去几十年中,人们致力于寻找合适的材料和装置,以利用太阳能生产化学燃料。其中,最有前景的选择之一是构建一种能从水中产生氢燃料或氧气的光电化学(PEC)电池。由于各种新开发的理念和方法,包括在窄带隙半导体中促进电荷传输或在宽带隙半导体中掺杂以增强可见光吸收;使用电催化剂降低过电位;控制材料形态以增强光吸收并缩短少数载流子的传输距离;以及其他方法,如利用异质结结构进行能带结构工程、敏化和钝化层处理等,在理解和构建高效光阳极以提高性能方面,短时间内已取得显著进展。在本综述中,我们重点关注一些具有高PEC性能的、有前景的可见光活性光阳极材料的最新进展,如BiVO4、α-Fe2O3、WO3、TaON和Ta3N5。

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