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将金属有机框架限制在共价有机框架的孔中:一种用于提高光催化性能的微观Z型体系。

Confining Metal-Organic Framework in the Pore of Covalent Organic Framework: A Microscale Z-Scheme System for Boosting Photocatalytic Performance.

作者信息

Deng Yang, Wang Yue, Di Zichen, Xie Mingsen, Dai Fangfang, Zhan Shaoqi, Zhang Zhen

机构信息

Tianjin Key Laboratory of Molecular Optoelectronic, Department of Chemistry, School of Science, Tianjin University, Tianjin, 300072, P. R. China.

Joint School of National University of Singapore and Tianjin University, International Campus of Tianjin University, Binhai New City, Fuzhou, 350207, P. R. China.

出版信息

Small Methods. 2022 Jul;6(7):e2200265. doi: 10.1002/smtd.202200265. Epub 2022 Apr 28.

Abstract

The search for building hierarchical porous materials with accelerated photo-induced electrons and charge-carrier separation is important because they hold great promise for applications in various fields. Here, a facile strategy of confining metal-organic framework (MOF) in the 1D channel of the 2D covalent organic framework (COF) to construct a novel COF@MOF micro/nanopore network is proposed. Specifically, a nitrogen-riched COF (TTA-BPDA-COF) is chosen as the platform for in-situ growth of a Co-based MOF (ZIF-L-Co) to form a TTA-BPDA-COF@ZIF-L-Co hybrid material. The hierarchical porous structure endows TTA-BPDA-COF@ZIF-L-Co with superior adsorption capacity. In addition, the integration of TTA-BPDA-COF and ZIF-L-Co forms a Z-scheme photocatalytic system, which significantly improved the redox properties and accelerated the separation of photogenerated charges and holes, achieving great improvement in photocatalytic activity. This confinement engineering strategy provides a new idea to construct a versatile molecular-material photocatalytic platform.

摘要

寻找具有加速光致电子和电荷载流子分离功能的分级多孔材料至关重要,因为它们在各个领域的应用都具有巨大潜力。在此,提出了一种将金属有机框架(MOF)限制在二维共价有机框架(COF)的一维通道中以构建新型COF@MOF微/纳米孔网络的简便策略。具体而言,选择富含氮的COF(TTA-BPDA-COF)作为原位生长钴基金属有机框架(ZIF-L-Co)的平台,以形成TTA-BPDA-COF@ZIF-L-Co杂化材料。分级多孔结构赋予TTA-BPDA-COF@ZIF-L-Co优异的吸附能力。此外,TTA-BPDA-COF和ZIF-L-Co的整合形成了Z型光催化体系,显著改善了氧化还原性能,加速了光生电荷和空穴的分离,实现了光催化活性的大幅提高。这种限制工程策略为构建通用的分子材料光催化平台提供了新思路。

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