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利用颗粒光催化剂实现太阳能驱动水分解的最新进展和展望。

Recent advances and perspectives for solar-driven water splitting using particulate photocatalysts.

机构信息

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian National Laboratory for Clean Energy, Zhongshan Road 457, Dalian, 116023, China.

University of Chinese Academy of Sciences, China.

出版信息

Chem Soc Rev. 2022 May 10;51(9):3561-3608. doi: 10.1039/d1cs01182k.

Abstract

The conversion and storage of solar energy to chemical energy artificial photosynthesis holds significant potential for optimizing the energy situation and mitigating the global warming effect. Photocatalytic water splitting utilizing particulate semiconductors offers great potential for the production of renewable hydrogen, while this cross-road among biology, chemistry, and physics features a topic with fascinating interdisciplinary challenges. Progress in photocatalytic water splitting has been achieved in recent years, ranging from fundamental scientific research to pioneering scalable practical applications. In this review, we focus mainly on the recent advancements in terms of the development of new light-absorption materials, insights and strategies for photogenerated charge separation, and studies towards surface catalytic reactions and mechanisms. In particular, we emphasize several efficient charge separation strategies such as surface-phase junction, spatial charge separation between facets, and polarity-induced charge separation, and also discuss their unique properties including ferroelectric and photo-Dember effects on spatial charge separation. By integrating time- and space-resolved characterization techniques, critical issues in photocatalytic water splitting including photoinduced charge generation, separation and transfer, and catalytic reactions are analyzed and reviewed. In addition, photocatalysts with state-of-art efficiencies in the laboratory stage and pioneering scalable solar water splitting systems for hydrogen production using particulate photocatalysts are presented. Finally, some perspectives and outlooks on the future development of photocatalytic water splitting using particulate photocatalysts are proposed.

摘要

太阳能到化学能的转化和存储 人工光合作用在优化能源状况和缓解全球变暖效应方面具有巨大潜力。利用颗粒半导体的光催化水分解为可再生氢气的生产提供了巨大的潜力,而生物学、化学和物理学的这一交叉领域具有迷人的跨学科挑战。近年来,光催化水分解在从基础科学研究到开创性的可扩展实际应用方面都取得了进展。在这篇综述中,我们主要关注新的光吸收材料的开发、光生电荷分离的见解和策略以及表面催化反应和机制方面的研究方面的最新进展。特别是,我们强调了几种有效的电荷分离策略,如表面相结、晶面间的空间电荷分离和极性诱导电荷分离,并讨论了它们独特的性质,包括铁电和光 Dember 效应对空间电荷分离的影响。通过整合时间和空间分辨的表征技术,对光催化水分解中的关键问题,包括光诱导电荷的产生、分离和转移以及催化反应进行了分析和综述。此外,还介绍了在实验室阶段具有高效率的光催化剂和使用颗粒光催化剂的开创性的可扩展太阳能水分解制氢系统。最后,对颗粒光催化剂光催化水分解的未来发展提出了一些观点和展望。

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