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用于可见光驱动 CO 还原的共价连接核壳 NH-MIL-125@COFs-OH 杂化材料。

Covalently connected core-shell NH-MIL-125@COFs-OH hybrid materials for visible-light-driven CO reduction.

机构信息

College of Chemistry and Chemical Engineering, Hunan Provincial Key Laboratory of Micro and Nano Material Interface Science, Central South University, Changsha 410083, China.

College of Chemistry and Chemical Engineering, Hunan Provincial Key Laboratory of Micro and Nano Material Interface Science, Central South University, Changsha 410083, China.

出版信息

J Colloid Interface Sci. 2023 May;637:1-9. doi: 10.1016/j.jcis.2022.12.154. Epub 2022 Dec 29.

Abstract

Herein, the covalently connected core-shell metal-organic frameworks (MOFs)@covalent-organic frameworks (COFs) hybrid materials were successfully constructed by coating the stable COF-OH shell on the NH-MIL-125 core. The introduction of the NH-MIL-125 core endowed the hybrid materials with high Brunauer-Emmett-Teller (BET) surface area (S) and abundant unsaturated metal sites. And the coating of COF-OH shell endowed the hybrid materials outstanding physicochemical stability and visible-light response, and suitable band gaps. Moreover, the thickness of the COF-OH shell was carefully adjusted according to the feeding amount of NH-MIL-125. Impressively, the electron transfer pathway in the formed heterostructure was clarified and it was proven that a type-II heterojunction was generated between the MOFs and the COFs. The formed stable CN covalent bonds in the interfacial layer was beneficial to the photogenerated electron transfer and the electron-hole pairs separation, which greatly enhanced the CO photocatalytic reduction. The product NH-MIL-125@COF-3 exhibited the highest CO yield of 22.93 μmol·g·h, about 2 times higher than NH-MIL-125 (11.82 μmol·g·h) and 3 times greater than COF-OH (7.26 μmol·g·h). This work can provide helpful ideas for the careful design of the novel MOFs@COFs hybrid materials as well as useful exploration for the CO photocatalytic reduction.

摘要

在此,通过在稳定的 COF-OH 壳上包覆 NH-MIL-125 核,成功构建了共价连接的核壳金属有机骨架(MOFs)@共价有机骨架(COFs)杂化材料。NH-MIL-125 核的引入赋予了杂化材料高的 Brunauer-Emmett-Teller(BET)比表面积(S)和丰富的不饱和金属位点。而 COF-OH 壳的包覆则赋予了杂化材料出色的物理化学稳定性和可见光响应以及合适的带隙。此外,根据 NH-MIL-125 的进料量仔细调节了 COF-OH 壳的厚度。令人印象深刻的是,澄清了在形成的异质结构中的电子转移途径,并证明了在 MOFs 和 COFs 之间形成了 II 型异质结。界面层中形成的稳定 CN 共价键有利于光生电子转移和电子-空穴对分离,从而大大增强了 CO 的光催化还原。所形成的稳定的 CN 共价键在界面层中有利于光生电子转移和电子-空穴对分离,从而大大提高了 CO 的光催化还原效率。所得到的 NH-MIL-125@COF-3 表现出最高的 CO 产率为 22.93 μmol·g·h,约为 NH-MIL-125(11.82 μmol·g·h)的 2 倍,是 COF-OH(7.26 μmol·g·h)的 3 倍。这项工作可以为新型 MOFs@COFs 杂化材料的精心设计提供有价值的思路,也为 CO 的光催化还原提供了有益的探索。

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