Yan Jiawei, Wei Zhidong, Takagi Kai, Motodate Masaya, Jiang Zhi, Terashima Chiaki, Shangguan Wenfeng
Research Center for Combustion and Environment Technology, Shanghai Jiao Tong University, Shanghai, 200240, People's Republic of China.
Research Institute for Science and Technology, Tokyo University of Science, Chiba, 278-8510, Japan.
Nanomicro Lett. 2025 Mar 21;17(1):196. doi: 10.1007/s40820-025-01687-3.
Particulate photocatalytic systems using nanoscale photocatalysts have been developed as an attractive promising route for solar energy utilization to achieve resource sustainability and environmental harmony. Dynamic obstacles are considered as the dominant inhibition for attaining satisfactory energy-conversion efficiency. The complexity in light absorption and carrier transfer behaviors has remained to be further clearly illuminated. It is challenging to trace the fast evolution of charge carriers involved in transfer migration and interfacial reactions within a micro-nano-single-particle photocatalyst, which requires spatiotemporal high resolution. In this review, comprehensive dynamic descriptions including irradiation field, carrier separation and transfer, and interfacial reaction processes have been elucidated and discussed. The corresponding mechanisms for revealing dynamic behaviors have been explained. In addition, numerical simulation and modeling methods have been illustrated for the description of the irradiation field. Experimental measurements and spatiotemporal characterizations have been clarified for the reflection of carrier behavior and probing detection of interfacial reactions. The representative applications have been introduced according to the reported advanced research works, and the relationships between mechanistic conclusions from variable spatiotemporal measurements and photocatalytic performance results in the specific photocatalytic reactions have been concluded. This review provides a collective perspective for the full understanding and thorough evaluation of the primary dynamic processes, which would be inspired for the improvement in designing solar-driven energy-conversion systems based on nanoscale particulate photocatalysts.
使用纳米级光催化剂的颗粒光催化系统已被开发为一种有吸引力的、有前景的太阳能利用途径,以实现资源可持续性和环境和谐。动态障碍被认为是实现令人满意的能量转换效率的主要抑制因素。光吸收和载流子转移行为的复杂性仍有待进一步清晰阐明。追踪微纳单颗粒光催化剂中参与转移迁移和界面反应的电荷载流子的快速演化具有挑战性,这需要时空高分辨率。在这篇综述中,包括辐照场、载流子分离与转移以及界面反应过程在内的全面动态描述已得到阐明和讨论。解释了揭示动态行为的相应机制。此外,还阐述了用于描述辐照场的数值模拟和建模方法。明确了用于反映载流子行为和探测界面反应的实验测量和时空表征。根据已报道的先进研究工作介绍了代表性应用,并总结了可变时空测量得出的机理结论与特定光催化反应中的光催化性能结果之间的关系。这篇综述为全面理解和彻底评估主要动态过程提供了一个总体视角,这将为基于纳米级颗粒光催化剂设计太阳能驱动能量转换系统的改进提供启发。