Photoelectrochemical devices for solar water splitting – materials and challenges

分解水 半导体 纳米技术 材料科学 太阳能 太阳能燃料 光电化学电池 化学能 析氧 光电子学 化学 电极 电气工程 电化学 光催化 生物化学 电解质 工程类 物理化学 催化作用 有机化学
作者
Chaoran Jiang,Savio J. A. Moniz,Aiqin Wang,Tao Zhang,Junwang Tang
出处
期刊:Chemical Society Reviews [Royal Society of Chemistry]
卷期号:46 (15): 4645-4660 被引量:1637
标识
DOI:10.1039/c6cs00306k
摘要

It is widely accepted within the community that to achieve a sustainable society with an energy mix primarily based on solar energy we need an efficient strategy to convert and store sunlight into chemical fuels. A photoelectrochemical (PEC) device would therefore play a key role in offering the possibility of carbon-neutral solar fuel production through artificial photosynthesis. The past five years have seen a surge in the development of promising semiconductor materials. In addition, low-cost earth-abundant co-catalysts are ubiquitous in their employment in water splitting cells due to the sluggish kinetics of the oxygen evolution reaction (OER). This review commences with a fundamental understanding of semiconductor properties and charge transfer processes in a PEC device. We then describe various configurations of PEC devices, including single light-absorber cells and multi light-absorber devices (PEC, PV-PEC and PV/electrolyser tandem cell). Recent progress on both photoelectrode materials (light absorbers) and electrocatalysts is summarized, and important factors which dominate photoelectrode performance, including light absorption, charge separation and transport, surface chemical reaction rate and the stability of the photoanode, are discussed. Controlling semiconductor properties is the primary concern in developing materials for solar water splitting. Accordingly, strategies to address the challenges for materials development in this area, such as the adoption of smart architectures, innovative device configuration design, co-catalyst loading, and surface protection layer deposition, are outlined throughout the text, to deliver a highly efficient and stable PEC device for water splitting.
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