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Self-assembled reduced graphene oxide-TiO2 nanocomposites: Synthesis, DFTB plus calculations, and enhanced photocatalytic reduction of CO2 to methanol

机译:自组装的氧化石墨烯氧化钛-TiO2纳米复合材料:合成,DFTB加计算,并增强光催化还原CO 2至甲醇

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摘要

A facile combined method, namely sonothermal-hydrothermal, was adopted to assemble titanium dioxide (TiO2) nanoparticles on the surface of reduced graphene oxide (RGO) to form nanocomposites. Characterization techniques confirm that RGO-TiO2 composite is well constituted. Enhanced photocatalytic CO2 reduction to methanol by the composites under UVA and visible irradiation suggests the modification in the band gap of the composite and promotion of the separation of photogenerated carriers, yielding methanol production rate of 2.33 mmol g(-1) h(-1). Theoretical investigation demonstrated that combining RGO with TiO2 resulted in an upward shift of TiO2 bands by 0.2 V due to the contribution of RGO electrons. Relatively strong adsorption of RGO over the (101) anatase surface with the binding energy of approximately 0.4 kcal mol(-1) per carbon atom was observed. Consideration of orbitals of TiO2, RGO and RGO-TiO2 composite led to a conclusion that UVA photoreaction proceeds via the traditional mechanism of photogenerated electron transfer to RGO while visible light CO2 reduction proceeds as a result of charge transfer photoexcitation that directly produces electrons in RGO and holes in TiO2. Superior photocatalytic activity of RGO-TiO2 composite in the present study is attributed to the formation of tight contact between its constituents, which is required for efficient electron and charge transfer. (C) 2019 Published by Elsevier Ltd.
机译:采用容易组合方法,即声毒 - 水热量,在还原石墨烯(RGO)的表面上组装二氧化钛(TiO 2)纳米颗粒以形成纳米复合材料。表征技术证实Rgo-TiO2复合材料很好地构成。通过UVA的复合材料增强光催化二氧化碳对甲醇的CO 2还原对辐射的复合材料的带隙和促进光生载体的分离,得到2.33mmol G(-1)H(-1)的促进。理论研究证明,由于RGO电子的贡献,将RGO与TiO 2组合导致TiO 2带向上偏移0.2V。观察到每种碳原子的约0.4kcal摩尔(-1)约0.4kcal摩尔(-1)的(101)锐钛矿表面相对强的Rgo吸附。考虑TiO2,RGO和RGO-TiO2复合材料的轨道导致了结论,即UVA光射反应通过传统的光生电子转移到RGO的机制而进行,而可见光CO2减少由于电荷转移的光透视而进行,可直接在RGO中产生电子。 TiO2中的孔。本研究中RGO-TiO2复合材料的优异光催化活性归因于其成分之间的紧密接触,这是有效的电子和电荷转移所必需的。 (c)2019年由elestvier有限公司出版

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