首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Engineering the Cu2O-reduced graphene oxide interface to enhance photocatalytic degradation of organic pollutants under visible light
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Engineering the Cu2O-reduced graphene oxide interface to enhance photocatalytic degradation of organic pollutants under visible light

机译:设计Cu2O还原的氧化石墨烯界面以增强可见光下有机污染物的光催化降解

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In this work, Cu2O-reduced graphene oxide (rGO) composites were synthesized with tunable Cu2O crystal facets ({111}, { 110} and {100} facets). The degradation performance of methylene blue under visible light was ranked: o-Cu2O{111}-rGO > d-Cu2O{110}-rGO >c-Cu2O{100}-rGO. UV-vis diffuse reflectance and photoluminescence spectra showed that 0-Cu2O-rGO exhibited the enhanced visible-light absorption and the faster charge-transfer rate. Furthermore, X-ray photoelectron spectroscopy and Raman characterizations showed that o-Cu2O-rGO was beneficial for the stabilization of Cu+ species and the formation of oxygen defects. With the help of in-situ electron spin resonance (ESR), more superoxide radicals were detected over o-Cu2O-rGO, which promoted organic pollutants degradation. The above results confirmed that the catalytic behaviors of three Cu2O-rGO composites were related to the electronic structures and interfacial connections. The o-Cu2O{111}-rGO displayed the superior performance, for the highly-active coordinated unsaturated Cu and the intensive interfacial connection, which was beneficial for the rapid the photo-generated electron transfer and the formed active superoxide species. This study showed that engineering the interfacial structures could provide a scientific basis for the design of efficient photo-catalysts. (C) 2015 Elsevier B.V. All rights reserved.
机译:在这项工作中,合成了具有可调Cu2O晶面({111},{110}和{100}面)的Cu2O还原氧化石墨烯(rGO)复合材料。对亚甲基蓝在可见光下的降解性能进行了排序:o-Cu2O {111} -rGO> d-Cu2O {110} -rGO> c-Cu2O {100} -rGO。紫外可见漫反射和光致发光光谱表明,0-Cu2O-rGO表现出增强的可见光吸收和更快的电荷转移速率。此外,X射线光电子能谱和拉曼光谱表征表明,o-Cu2O-rGO有利于稳定Cu +物种和形成氧缺陷。借助原位电子自旋共振(ESR),在o-Cu2O-rGO上检测到更多的超氧自由基,从而促进了有机污染物的降解。以上结果证实了三种Cu2O-rGO复合材料的催化行为与电子结构和界面连接有关。 o-Cu2O {111} -rGO对高活性配位不饱和铜和紧密的界面连接表现出优异的性能,有利于光生电子的快速转移和活性超氧化物的形成。这项研究表明,对界面结构进行工程设计可以为设计有效的光催化剂提供科学依据。 (C)2015 Elsevier B.V.保留所有权利。

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