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首页> 外文期刊>Journal of Photochemistry and Photobiology, A. Chemistry >Enhanced visible light photocatalytic performance of g-C3N4/CuS p-n heterojunctions for degradation of organic dyes
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Enhanced visible light photocatalytic performance of g-C3N4/CuS p-n heterojunctions for degradation of organic dyes

机译:增强的G-C3N4 / CUS P-N异质功能的可见光光催化性能,用于有机染料的降解

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摘要

A novel g-C3N4/CuS p-n heterostructured photocatalyst has been fabricated through an in situ synthesis technique. The samples were characterized through X-ray diffraction, energy dispersive spectroscopy, Xray photoelectron spectroscopy, transmission electron microscopy and UV vis spectroscopy. And the results indicated that CuS nanoparticles were closely anchored on the surface of g-C3N4 with good dispersion. The g-C3N4/CuS heterojunctions exhibited enhanced photocatalytic performance in degradation of RhB and MB than that of pure g-C3N4 and CuS, and the selected sample of g-C3N4/ CuS-2 displayed the best photocatalytic activity. The degradation rates of RhB and MB with g-C3N4/CuS-2 photocatalyst were 8.914 and 13.543 times higher than that of pure g-C3N4, and 3.023 and 6373 times higher than that of pure CuS, respectively. The enhancement of photocatalytic activity may be ascribed to the matched overlapping band structure and the interaction between CuS and g-C3N4. The interaction between g-C3N4 and CuS would not only improve the optical absorption property of g-C3N4, but also create more interface for the efficiently transfer of photo-generated electron-hole pairs to restrict the recombination, which was proved by the photoluminescent spectra. Moreover, a possible photocatalytic mechanism has been tentatively proposed according to the experimental results. (C) 2017 Elsevier B.V. All rights reserved.
机译:通过原位合成技术制造了一种新的G-C3N4 / CUS p-N异质结构光催化剂。通过X射线衍射,能量分散光谱,X射线光电子能谱,透射电子显微镜和UV Vis光谱表征样品。结果表明,CUS纳米颗粒在G-C3N4的表面上紧密地锚固,具有良好的分散体。 G-C3N4 / CUS异质结表现出显着的光催化性能,在rHB和MB的降解中的降解而不是纯G-C3N4和CU,而G-C3N4 / CUS-2的选定样品显示出最佳的光催化活性。具有G-C3N4 / CUS-2光催化剂的RHB和MB的降解速率分别高于纯G-C3N4的8.914和13.543倍,分别高于纯CU的3.023和6373倍。光催化活性的增强可以归因于匹配的重叠带结构和CU和G-C3N4之间的相互作用。 G-C3N4和CU之间的相互作用不仅改善了G-C3N4的光学吸收性,而且还可以产生更多的界面,以便有效地传递光产生的电子空穴对来限制通过光致发光光谱证明的重组。 。此外,根据实验结果提出了一种可能的光催化机制。 (c)2017 Elsevier B.v.保留所有权利。

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