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构建具有增强可见光光催化活性和光电化学活性的二维类石墨烯MoS2/C3N4异质结

Construction of a 2D Graphene-Like MoS2/C3N4 Heterojunction with Enhanced Visible-Light Photocatalytic Activity and Photoelectrochemical Activity.

作者信息

Yan Jia, Chen Zhigang, Ji Haiyan, Liu Zheng, Wang Xin, Xu Yuanguo, She Xiaojie, Huang Liying, Xu Li, Xu Hui, Li Huaming

机构信息

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

School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore.

出版信息

Chemistry. 2016 Mar 24;22(14):4764-73. doi: 10.1002/chem.201503660. Epub 2016 Feb 2.

Abstract

A novel graphene-like MoS2 /C3N4 (GL-MoS2/C3N4) composite photocatalyst has been synthesized by a facile ethylene glycol (EG)-assisted solvothermal method. The structure and morphology of this GL-MoS2/C3N4 photocatalyst have been investigated by a wide range of characterization methods. The results showed that GL-MoS2 was uniformly distributed on the surface of GL-C3N4 forming a heterostructure. The obtained composite exhibited strong absorbing ability in the ultraviolet (UV) and visible regions. When irradiated with visible light, the composite photocatalyst showed high activity superior to those of the respective individual components GL-MoS2 and GL-C3N4 in the degradation of methyl orange. The enhanced photocatalytic activity of the composite may be attributed to the efficient separation of electron-hole pairs as a result of the matching band potentials between GL-MoS2 and GL-C3N4. Furthermore, a photocatalytic mechanism for the composite material has been proposed, and the photocatalytic reaction kinetics has been measured. Moreover, GL-MoS2/C3N4 could serve as a novel sensor for trace amounts of Cu(2+) since it exhibited good selectivity for Cu(2+) detection in water.

摘要

通过简便的乙二醇(EG)辅助溶剂热法合成了一种新型的类石墨烯二硫化钼/氮化碳(GL-MoS2/C3N4)复合光催化剂。采用多种表征方法对该GL-MoS2/C3N4光催化剂的结构和形貌进行了研究。结果表明,GL-MoS2均匀分布在GL-C3N4表面,形成了异质结构。所制备的复合材料在紫外(UV)和可见光区域表现出很强的吸收能力。在可见光照射下,该复合光催化剂在降解甲基橙方面表现出高于其各单一组分GL-MoS2和GL-C3N4的高活性。复合材料光催化活性的增强可能归因于GL-MoS2和GL-C3N4之间能带电位匹配导致的电子-空穴对的有效分离。此外,还提出了该复合材料的光催化机理,并测定了光催化反应动力学。而且,GL-MoS2/C3N4对水中痕量Cu(2+)具有良好的选择性,可作为一种新型的Cu(2+)传感器。

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