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通过具有腔增强效应的MoS纳米管提高g-CN的光催化性能。

Boosting the Photocatalytic Performance of g-CN through MoS Nanotubes with the Cavity Enhancement Effect.

作者信息

Li Xiaolong, Zhang Yahui, Wei Tianzhu, Wang Chenyu, Wan Jundi, Tang Yulu, Guo Mingyuan, Ma Yongning, Yang Yuhao

机构信息

College of Chemistry and Chemical Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.

Shaanxi Key Laboratory of Chemical Additives for Industry, Shaanxi University of Science and Technology, Xi'an 710021, China.

出版信息

Langmuir. 2024 May 28;40(21):11160-11172. doi: 10.1021/acs.langmuir.4c00755. Epub 2024 May 15.

Abstract

The development of catalysts with high photon utilization efficiency is crucial for enhancing the catalytic performance of photocatalysts. Graphitic carbon nitride (g-CN) is a prominent material in the field of photocatalysis. However, it still exhibits drawbacks such as low utilization of visible light and severe recombination of photogenerated carriers. To address these issues, this study employs MoS nanotubes (NTs) as cocatalysts and constructs MoS NTs/g-CN. The MoS NTs/g-CN exhibits a significant cavity enhancement effect through multiple light reflections. This results in a broad spectral absorption range and high photon utilization efficiency, while also reducing the recombination of photogenerated carriers. The photocatalyst demonstrates outstanding performance in both photocatalytic hydrogen production and photodegradation of organic pollutants. Specifically, the hydrogen production rate is 1921 μmol·g·h, which is approximately 2.4 times that of g-CN. Furthermore, the photodegradation rate of Rhodamine B reaches 98.6% within 30 min, which is approximately three times higher than that of g-CN. Free radical capture experiments confirm that holes (h) are the primary active species in photodegradation. A plausible photocatalytic mechanism for the catalyst is proposed. This study provides valuable insights into the development of heterojunction photocatalysts with high photon utilization efficiency.

摘要

开发具有高光子利用效率的催化剂对于提高光催化剂的催化性能至关重要。石墨相氮化碳(g-CN)是光催化领域的一种重要材料。然而,它仍然存在诸如可见光利用率低和光生载流子严重复合等缺点。为了解决这些问题,本研究采用MoS纳米管(NTs)作为助催化剂,并构建了MoS NTs/g-CN。MoS NTs/g-CN通过多次光反射表现出显著的空穴增强效应。这导致了宽光谱吸收范围和高光子利用效率,同时还减少了光生载流子的复合。该光催化剂在光催化产氢和有机污染物光降解方面均表现出优异的性能。具体而言,产氢速率为1921 μmol·g·h,约为g-CN的2.4倍。此外,罗丹明B在30分钟内的光降解率达到98.6%,约为g-CN的三倍。自由基捕获实验证实,空穴(h)是光降解过程中的主要活性物种。提出了该催化剂合理的光催化机理。本研究为开发具有高光子利用效率的异质结光催化剂提供了有价值的见解。

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