Exploration of ultrafast dynamic processes in photocatalysis: Advances and challenges

IF 6.3 3区 综合性期刊 Q1 Multidisciplinary Fundamental Research Pub Date : 2025-11-01 DOI:10.1016/j.fmre.2024.04.003
Fengying Zhang , Yuman Jiang , Jiaxin Liu , Anqiang Jiang , Yuehan Cao , Shan Yu , Kaibo Zheng , Ying Zhou
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Abstract

Photocatalysis plays a crucial role in harnessing renewable energy by efficiently converting solar energy into chemical energy. Adequate cognition of photogenerated charge carrier dynamics in photocatalysis is the key to realizing efficient solar energy utilization, and provides guidance for breaking through the efficiency bottleneck. However, a convincing correlation between those photophysical processes and the photocatalytic performance has yet been established due to the complexity of photocatalytic reactions. In this review, we overviewed the detailed ultrafast photophysics in photocatalysis based on three typical ultrafast spectroscopic techniques (TRPL, TA and TRIR), and put a special focus on the justification as well as the limitation on correlating those photophysics with the actual catalytic performance. The classification of carrier behaviors after photoexcitation as well as typical time-resolved spectroscopic characterization techniques are briefly introduced first. State-of-the-art studies on the excited state dynamics in photocatalysis and its correlation to catalytic performance are then systematically presented from three types of common photocatalysts including quantum dots, polymeric photocatalysts, and traditional semiconductors. Finally, a summary on the correlation between ultrafast photophysics and the final photocatalytic performance is provided, and challenges and limitations of current photophysical characterization to rationalize the catalytic performance are outlined.
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探索光催化中的超快动态过程:进展与挑战
光催化通过将太阳能有效地转化为化学能,在利用可再生能源方面起着至关重要的作用。充分认识光催化中光生载流子动力学是实现太阳能高效利用的关键,对突破效率瓶颈具有指导意义。然而,由于光催化反应的复杂性,这些光物理过程与光催化性能之间尚未建立令人信服的相关性。本文以三种典型的超快光谱技术(TRPL、TA和TRIR)为基础,对光催化中的超快光物理进行了详细的综述,并重点讨论了将这些超快光物理与实际催化性能相关联的理由和局限性。首先简要介绍了光激发后载流子行为的分类以及典型的时间分辨光谱表征技术。从量子点、聚合物光催化剂和传统半导体等三种常见的光催化剂出发,系统地介绍了光催化中激发态动力学及其与催化性能的关系。最后,总结了超快光物理与最终光催化性能之间的关系,并概述了当前光物理表征以使催化性能合理化的挑战和局限性。
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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