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用于高效整体CO光还原的金属有机框架工程分层结构

Engineering Hierarchical Architecture of Metal-Organic Frameworks for Highly Efficient Overall CO Photoreduction.

作者信息

Huang Hai-Bo, Fang Zhi-Bin, Wang Rui, Li Lan, Khanpour Mojtaba, Liu Tian-Fu, Cao Rong

机构信息

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fujian, Fuzhou, 350002, P. R. China.

University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.

出版信息

Small. 2022 Apr;18(16):e2200407. doi: 10.1002/smll.202200407. Epub 2022 Mar 9.

Abstract

Previous studies on syntheses of metal-organic frameworks (MOFs) for photocatalytic CO reduction are mainly focused on the exquisite control over the net topology and the functionality of metal clusters/organic building blocks. This contribution demonstrates that the rational design of MOF-based photocatalyst can be further extended to the hierarchical structure at micrometer scales well beyond the conventional MOF design at the molecular level. By taking advantage of the disparity of two selective MOFs in nucleation kinetics, a hierarchical core-shell MOF@MOF structure is successfully constructed through a simple one-pot synthesis. Besides inheriting the high porosity, crystallinity, and robustness of parent MOFs, the obtained heterojunction exhibits extended photoresponse, optimized band alignment with large overpotential, and greatly enhanced photogenerated charge separation, which would be hardly realized by the merely molecular-level assembly. As a result, the challenging overall CO photoreduction is achieved, which generates a record high HCOOH production (146.0 µmol/g/h) without using any sacrificial reagents. Moreover, the core-shell structure exhibits a more effective use of photogenerated electrons than the individual MOFs. This work shows that harnessing the hierarchical architecture of MOFs present a new and effective alternative to tuning the photocatalytic performance at a mesoscopic level.

摘要

先前关于用于光催化CO还原的金属有机框架(MOF)合成的研究主要集中在对金属簇/有机结构单元的净拓扑结构和功能进行精确控制。本研究表明,基于MOF的光催化剂的合理设计可以进一步扩展到微米尺度的分级结构,这远远超出了传统的分子水平的MOF设计。利用两种选择性MOF在成核动力学上的差异,通过简单的一锅法成功构建了分级核壳结构的MOF@MOF。所得异质结除了继承母体MOF的高孔隙率、结晶度和稳定性外,还表现出扩展的光响应、具有大过电位的优化能带排列以及大大增强的光生电荷分离,而这仅通过分子水平的组装几乎无法实现。结果,实现了具有挑战性的整体CO光还原,在不使用任何牺牲试剂的情况下产生了创纪录的高HCOOH产量(146.0 µmol/g/h)。此外,核壳结构比单个MOF对光生电子的利用更有效。这项工作表明,利用MOF的分级结构为在介观水平上调节光催化性能提供了一种新的有效方法。

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