He Xianhong, Tian Wei, Yang Lin, Bai Zhengyu, Li Liang
School of Physical Science and Technology, Jiangsu Key Laboratory of Thin Films, Center for Energy Conversion Materials and Physics (CECMP), Soochow University, Suzhou, 215006, P. R. China.
School of Chemistry and Chemical Engineering, Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals, Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Henan Normal University, Xinxiang, Henan, 453007, P. R. China.
Small Methods. 2024 Feb;8(2):e2300350. doi: 10.1002/smtd.202300350. Epub 2023 Jun 17.
When constructing efficient, cost-effective, and stable photoelectrodes for photoelectrochemical (PEC) systems, the solar-driven photo-to-chemical conversion efficiency of semiconductors is limited by several factors, including the surface catalytic activity, light absorption range, carrier separation, and transfer efficiency. Accordingly, various modulation strategies, such as modifying the light propagation behavior and regulating the absorption range of incident light based on optics and constructing and regulating the built-in electric field of semiconductors based on carrier behaviors in semiconductors, are implemented to improve the PEC performance. Herein, the mechanism and research advancements of optical and electrical modulation strategies for photoelectrodes are reviewed. First, parameters and methods for characterizing the performance and mechanism of photoelectrodes are introduced to reveal the principle and significance of modulation strategies. Then, plasmon and photonic crystal structures and mechanisms are summarized from the perspective of controlling the propagation behavior of incident light. Subsequently, the design of an electrical polarization material, polar surface, and heterojunction structure is elaborated to construct an internal electric field, which serves as the driving force to facilitate the separation and transfer of photogenerated electron-hole pairs. Finally, the challenges and opportunities for developing optical and electrical modulation strategies for photoelectrodes are discussed.
在构建用于光电化学(PEC)系统的高效、经济高效且稳定的光电极时,半导体的太阳能驱动光化学转换效率受到多种因素的限制,包括表面催化活性、光吸收范围、载流子分离和转移效率。因此,人们实施了各种调制策略,例如基于光学原理改变光传播行为并调节入射光的吸收范围,以及基于半导体中的载流子行为构建和调节半导体的内建电场,以提高PEC性能。在此,对光电极的光学和电学调制策略的机制及研究进展进行综述。首先,介绍表征光电极性能和机制的参数及方法,以揭示调制策略的原理和意义。然后,从控制入射光传播行为的角度总结等离子体激元和光子晶体结构及机制。随后,阐述电极化材料、极性表面和异质结结构的设计,以构建内建电场,该电场作为驱动力促进光生电子 - 空穴对的分离和转移。最后,讨论了开发光电极光学和电学调制策略所面临的挑战与机遇。