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基于S型异质结构建部分封装结构用于持久选择性光催化CO还原

Fabrication of a Partial Encapsulation Architecture on S-Scheme Heterojunctions toward Durable Selective Photocatalytic CO Reduction.

作者信息

Li Chunmei, Zhang Pingfan, Li Jiaming, Xu Na, Che Guangbo, Niu Yaling, Dong Hongjun, Lu Huiling

机构信息

Institute of Green Chemistry and Chemical Technology, School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, P. R. China.

College of Chemistry, Jilin Normal University, Siping 136000, P. R. China.

出版信息

Inorg Chem. 2024 Oct 28;63(43):20781-20791. doi: 10.1021/acs.inorgchem.4c03508. Epub 2024 Oct 16.

Abstract

It remains a challenging issue to achieve durably stable photocatalytic CO reduction over heterojunctions owing to their inherent structural assembly features. Herein, a unique partial encapsulation architecture is fabricated on the 3D/2D CoWO/CN heterojunction by embedding CoWO microspheres on CN nanosheets, which achieves efficient, durable, stable, and selective photocatalytic CO reduction. For the optimal 5%-CoWO/CN heterojunction, the yield of selective CO reduction to CO is 7.70 and 3.82 times higher than those of CoWO and CN in 4 h, respectively, and it maintains a stable CO generation rate within 20 cycles over 80 h. A series of characterization experiments and density functional theory calculations reveal that the structural stability is reinforced significantly via strong interfacial interaction owing to the unique partial encapsulation architecture fabricated on the 3D/2D CoWO/CN heterojunction, the separation efficiency of photogenerated carriers is improved by inducing a built-in electric field and triggering the S-scheme charge-transport path, and the high CO product selectivity is attributed to the much lower free energy required for the generation path of CO compared to that for CH.

摘要

由于异质结固有的结构组装特性,在其表面实现持久稳定的光催化CO还原仍然是一个具有挑战性的问题。在此,通过将CoWO微球嵌入CN纳米片上,在3D/2D CoWO/CN异质结上构建了一种独特的部分封装结构,实现了高效、持久、稳定和选择性的光催化CO还原。对于最佳的5%-CoWO/CN异质结,在4小时内,选择性CO还原为CO的产率分别比CoWO和CN高7.70倍和3.82倍,并且在80小时内的20个循环中保持稳定的CO生成速率。一系列表征实验和密度泛函理论计算表明,由于在3D/2D CoWO/CN异质结上构建的独特部分封装结构,通过强界面相互作用显著增强了结构稳定性,通过诱导内建电场和触发S型电荷传输路径提高了光生载流子的分离效率,并且高CO产物选择性归因于与CH生成路径相比,CO生成路径所需的自由能低得多。

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