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Synthesis of 3D flower-like structured Gd/TiO2@rGO nanocomposites via a hydrothermal method with enhanced visible-light photocatalytic activity

机译:通过具有增强的可见光光催化活性的水热法合成3D花状结构Gd / TiO2 @ Rgo纳米复合材料

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摘要

In this study, novel Gd/TiO2@rGO (GTR) nanocomposites with high photocatalytic performance were fabricated via a one-pot solvothermal approach. During the preparation step, graphene oxide (GO) was reduced to reduced graphene oxide (rGO), and subsequently, on the surfaces of which anatase TiO2 doped with Gd metal was grown in situ with a 3D petal-like structure. Gd doping into the classical TiO2@rGO system efficiently expands the absorption range of light, improves the separation of photogenerated electrons, and increases the photocatalytic reaction sites. The specific surface areas, morphological structures, and valence and conduction bands of the obtained GTR nanocomposites were analyzed and correlated with their enhanced photocatalytic performances for the degradation of an aqueous RhB solution. The experimental results indicated that the best performance was achieved with the 3% GTR composite, which exhibited the highest photoelectrocatalytic activity because of two aspects: the rapid separation of electrons and holes, and improvement in adsorption capacity. As compared with pure TiO2, the GTR composites demonstrated enhanced photoactivity due to synergetic effects between the effective photo-induced electron transfer from TiO2 to the surface of the rGO acceptor through interfacial interactions and the variation of structure and electrons under the adoption of Gd.
机译:在该研究中,通过一种溶液溶液方法制造具有高光催化性能的新型Gd / TiO2 @ Rgo(GTR)纳米复合材料。在制备步骤中,将氧化石墨烯(GO)降低至还原的氧化烯氧(RGO),随后,在掺杂有Gd金属的锐钛矿TiO2的表面以与3D花瓣状结构的原位生长。 GD掺杂进入经典TiO2 @ Rgo系统有效地扩展光的吸收范围,改善了光催化电子的分离,并增加了光催化反应位点。分析所得GTR纳米复合材料的比表面积,形态学结构和无效条带与其增强的光催化性能,用于降解水溶液溶液。实验结果表明,由于两个方面,用3%GTR复合材料实现了最佳的光电催化活动:电子和孔的快速分离,以及吸附能力的提高。与纯TiO2相比,GTR复合材料由于通过界面相互作用和通过GD的结构和电子的结构和电子在RGO受体的表面与RGO受体的表面之间的协同效应而表现出增强的光效应。

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    《RSC Advances》 |2019年第53期|共9页
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  • 正文语种 eng
  • 中图分类 化学;
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