Yuan Ling, Du Peiyang, Yin Luli, Yao Jiamin, Wang Jing, Liu Chao
School of Chemistry and Molecular Engineering, East China Normal University, Shanghai 200241, P.R. China.
School of Chemical and Environmental Engineering, Shanghai Institute of Technology, Shanghai 201418, P.R. China.
Nanoscale. 2024 Mar 14;16(11):5487-5503. doi: 10.1039/d3nr06677k.
Photocatalysis is a promising technology to resolve energy and environmental issues, where the design of high-efficiency photocatalysts is the central task. As an emerging family of photocatalysts, semiconducting metal-organic frameworks (MOFs) with remarkable features have demonstrated great potential in various photocatalytic fields. Compared to MOF-based photocatalysts with a single component, construction of S-scheme heterojunctions can render MOFs with enhanced charge separation, redox capacity and solar energy utilization, and thus improved photocatalytic performance. Herein, an overview of the recent advances in the design of MOF-based S-scheme heterojunctions for photocatalytic applications is provided. The basic principle of S-scheme heterojunctions is introduced. Then, three types of MOF-based S-scheme heterojunctions with different compositions are systematically summarized including MOF/non-MOF, MOF-on-MOF and MOF-derived heterojunctions. Afterwards, the enhanced performances of MOF-based S-scheme heterojunctions in hydrogen production, CO reduction, C-H functionalization, HO production and wastewater treatment are highlighted. Lastly, the current challenges and future prospects regarding the design and applications of MOF-based S-scheme heterojunctions are discussed to inspire the further development of this emerging field.
光催化是解决能源和环境问题的一项很有前景的技术,其中设计高效光催化剂是核心任务。作为新兴的光催化剂家族,具有显著特性的半导体金属有机框架材料(MOF)在各种光催化领域已展现出巨大潜力。与单一组分的基于MOF的光催化剂相比,构建S型异质结可使MOF具有增强的电荷分离、氧化还原能力和太阳能利用能力,从而提高光催化性能。在此,本文提供了基于MOF的用于光催化应用的S型异质结设计的最新进展概述。介绍了S型异质结的基本原理。然后,系统总结了三种不同组成的基于MOF的S型异质结,包括MOF/非MOF、MOF-on-MOF和MOF衍生异质结。之后,重点介绍了基于MOF的S型异质结在制氢、CO还原、C-H官能化、HO生成和废水处理方面的增强性能。最后,讨论了基于MOF的S型异质结设计和应用目前面临的挑战以及未来前景,以推动这一新兴领域的进一步发展。