Zhang Yong-Chao, Afzal Nisha, Pan Lun, Zhang Xiangwen, Zou Ji-Jun
Key Laboratory for Green Chemical Technology of Ministry of Education School of Chemical Engineering and Technology Tianjin University Tianjin 300072 China.
Collaborative Innovative Center of Chemical Science and Engineering (Tianjin) Tianjin 300072 China.
Adv Sci (Weinh). 2019 Mar 22;6(10):1900053. doi: 10.1002/advs.201900053. eCollection 2019 May 17.
Photocatalytic water splitting is promising for hydrogen energy production using solar energy and developing highly efficient photocatalysts is challenging. Defect engineering is proved to be a very useful strategy to promote the photocatalytic performance of metal-based photocatalysts, however, the vital role of defects is still ambiguous. This work comprehensively reviews point defective metal-based photocatalysts for water splitting, focusing on understanding the defects' disorder effect on optical adsorption, charge separation and migration, and surface reaction. The controllable synthesis and tuning strategies of defective structure to improve the photocatalytic performance are summarized, then the characterization techniques and density functional theory calculations are discussed to unveil the defect structure, and analyze the defects induced electronic structure change of catalysts and its ultimate effect on the photocatalytic activity at the molecular level. Finally, the challenge in developing more efficient defective metal-based photocatalysts is outlined. This work may help further the understanding of the fundamental role of defect structure in the photocatalytic reaction process and guide the rational design and fabrication of highly efficient and low-cost photocatalysts.
光催化水分解对于利用太阳能生产氢能具有广阔前景,而开发高效的光催化剂具有挑战性。缺陷工程被证明是提高金属基光催化剂光催化性能的一种非常有用的策略,然而,缺陷的关键作用仍不明确。本文全面综述了用于水分解的点缺陷金属基光催化剂,重点在于理解缺陷对光吸收、电荷分离与迁移以及表面反应的无序效应。总结了通过可控合成和调控策略来改善缺陷结构以提高光催化性能,然后讨论了表征技术和密度泛函理论计算,以揭示缺陷结构,并在分子水平上分析缺陷引起的催化剂电子结构变化及其对光催化活性的最终影响。最后,概述了开发更高效的缺陷金属基光催化剂所面临的挑战。本文有助于进一步理解缺陷结构在光催化反应过程中的基本作用,并指导高效低成本光催化剂的合理设计与制备。