Niu Qing, Dong Shaofeng, Tian Jinjin, Huang Guocheng, Bi Jinhong, Wu Ling
Department of Environmental Science and Engineering, Fuzhou University, Minhou, Fujian 350108, P. R. China.
State Key Laboratory of Photocatalysis on Energy and Environment, Fuzhou University, Minhou, Fujian 350108, P. R. China.
ACS Appl Mater Interfaces. 2022 Jun 1;14(21):24299-24308. doi: 10.1021/acsami.2c02439. Epub 2022 May 20.
Solar-driven photoreduction of CO into valuable fuels offers a sustainable technology to relieve the energy crisis as well as the greenhouse effect. Yet the exploration of highly efficient, selective, stable, and environmental benign photocatalysts for CO reduction remains a major issue and challenge. The interfacial engineering of heterojunction photocatalysts could be a valid approach to boost the efficiency of the catalytic process. Herein, we propose a novel covalent organic framework/metal organic framework (COF/MOF) heterojunction photocatalyst, using olefin (C═C) linked covalent organic framework (TTCOF) and NH-UiO-66 (Zr) (NUZ) as representative building blocks, for enhanced CO reduction to CO. The optimized TTCOF/NUZ exhibited a superior CO yield (6.56 μmol g h) in gas-solid system when irradiated by visible light and only with HO (g) as weak reductant, and it was 4.4 and 5 times higher than pristine TTCOF and NUZ, respectively. The photogenerated electrons transfer route was proposed to follow the typical step-scheme (S-scheme), which was affirmed by XPS, in situ XPS and EPR characterizations. The boosting CO photoreduction activity could be credited to the special charge carrier separation in S-scheme heterojunction, which can accelerate photogenerated electrons transportation and improve the redox ability at the interface. This work paves the way for the design and preparation of novel COF/MOF S-scheme heterostructure photocatalysts for CO reduction.
太阳能驱动的将CO光还原为有价值的燃料提供了一种可持续技术,以缓解能源危机以及温室效应。然而,探索用于CO还原的高效、选择性、稳定且环境友好的光催化剂仍然是一个主要问题和挑战。异质结光催化剂的界面工程可能是提高催化过程效率的有效方法。在此,我们提出了一种新型的共价有机框架/金属有机框架(COF/MOF)异质结光催化剂,使用烯烃(C═C)连接的共价有机框架(TTCOF)和NH-UiO-66(Zr)(NUZ)作为代表性结构单元,以增强CO还原为CO的能力。优化后的TTCOF/NUZ在气固体系中,在可见光照射且仅以H₂O(g)作为弱还原剂的情况下,表现出优异的CO产率(6.56 μmol g⁻¹ h⁻¹),分别比原始的TTCOF和NUZ高4.4倍和5倍。提出光生电子转移途径遵循典型的分步方案(S型方案),这通过XPS、原位XPS和EPR表征得到证实。CO光还原活性的提高可归因于S型异质结中特殊的电荷载流子分离,这可以加速光生电子传输并提高界面处的氧化还原能力。这项工作为设计和制备用于CO还原的新型COF/MOF S型异质结构光催化剂铺平了道路。