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S型AgI/g-CN异质结中化学吸附与独特电子转移途径之间的协同作用以改善光催化析氢性能

Synergism between chemisorption and unique electron transfer pathway in S-scheme AgI/g-CN heterojunction for improving the photocatalytic H evolution.

作者信息

Shang Yanyan, Fan Huiqing, Yang Xueya, Dong Wenqiang, Wang Weijia

机构信息

State Key Laboratory of Solidification Processing, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China.

State Key Laboratory of Solidification Processing, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China.

出版信息

J Colloid Interface Sci. 2023 Feb;631(Pt B):269-280. doi: 10.1016/j.jcis.2022.10.168. Epub 2022 Nov 4.

Abstract

AgI/g-CN S-scheme heterojunction with a unique electron transfer pathway was developed as a catalyst for H evolution. We discussed the behavior of chemisorption and photoexcited charge carriers in photocatalytic reduction on the S-scheme AgI/g-CN heterojunction. It was demonstrated that the path of charge transfer mediated by S-scheme AgI/g-CN heterojunction was favorable for the improvement of electron utilization in photocatalysis. The advantage of S-scheme heterojunction was that the holes in the valence band (VB) of g-CN could recombine with the electrons in the conduction band (CB) of AgI due to the built-in electric field. Electrons on the CB of g-CN and holes on the VB of AgI were preserved for further photocatalytic reaction. Therefore, a distinctive electron transfer pathway was introduced in the S-scheme heterojunction. In addition, the lifetime of charge carriers was prolonged, and the reduced ability of electrons was increased as compared to reference g-CN. It not only decreased the energy required for electron excitation, but also reduced the energy consumption for the charge transfer. This paper provided a new strategy to improve the utilization of photogenerated electrons and chemisorption of water for photocatalytic HO splitting.

摘要

具有独特电子转移途径的AgI/g-CN S型异质结被开发为析氢催化剂。我们讨论了S型AgI/g-CN异质结光催化还原过程中的化学吸附行为和光激发电荷载流子。结果表明,S型AgI/g-CN异质结介导的电荷转移路径有利于提高光催化中电子的利用率。S型异质结的优势在于,由于内建电场,g-CN价带(VB)中的空穴可以与AgI导带(CB)中的电子复合。g-CN导带上的电子和AgI价带上的空穴得以保留,用于进一步的光催化反应。因此,S型异质结引入了独特的电子转移途径。此外,与参比g-CN相比,电荷载流子的寿命延长,电子的还原能力增强。这不仅降低了电子激发所需的能量,还减少了电荷转移的能量消耗。本文提供了一种提高光生电子利用率和水的化学吸附以用于光催化析氢的新策略。

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