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合成均匀的 CdS 纳米球/石墨烯杂化纳米复合材料及其在可见光下作为光催化剂用于水中硝基有机物的选择性还原。

Synthesis of uniform CdS nanospheres/graphene hybrid nanocomposites and their application as visible light photocatalyst for selective reduction of nitro organics in water.

机构信息

State Key Laboratory Breeding Base of Photocatalysis, College of Chemistry and Chemical Engineering, Fuzhou University, Fuzhou 350002, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2013 May 22;5(10):4309-19. doi: 10.1021/am4010286. Epub 2013 May 6.

Abstract

We report the self-assembly of uniform CdS nanospheres/graphene (CdS NSPs/GR) hybrid nanocomposites via electrostatic interaction of positively charged CdS nanospheres (CdS NSPs) with negatively charged graphene oxide (GO), followed by GO reduction via a hydrothermal treatment. During this facile two-step wet chemistry process, reduced graphene oxide (RGO, also called GR) and the intimate interfacial contact between CdS NSPs and the GR sheets are achieved. Importantly, the CdS NSPs/GR nanocomposites exhibit a much higher photocatalytic performance than bare CdS NSPs toward selective reduction of nitro organics to corresponding amino organics under visible light irradiation. The superior photocatalytic performance of the CdS NSPs/GR nanocomposites can be attributed to the intimate interfacial contact between CdS NSPs and the GR sheets, which would maximize the excellent electron conductivity and mobility of GR that in turn markedly contributes to improving the fate and transfer of photogenerated charge carriers from CdS NSPs under visible light irradiation. Moreover, the photocorrosion of CdS and the photodegradation of GR can be efficiently inhibited. The excellent reusability of the CdS NSPs/GR nanocomposites can be attributed to the synergetic effect of the introduction of GR into the matrix of CdS NSPs and the addition of ammonium formate as quencher for photogenerated holes. It is hoped that our current work could promote us to efficiently harness such a simple and efficient self-assembly strategy to synthesize GR-based semiconductor composites with controlled morphology and, more significantly, widen the application of CdS/GR nanocomposite photocatalysts and offer new inroads into exploration and utilization of GR-based semiconductor nanocomposites as visible light photocatalysts for selective organic transformations.

摘要

我们通过带正电荷的 CdS 纳米球(CdS NSPs)与带负电荷的氧化石墨烯(GO)之间的静电相互作用,报告了均匀的 CdS 纳米球/石墨烯(CdS NSPs/GR)杂化纳米复合材料的自组装,随后通过水热处理还原 GO。在这个简单的两步湿化学过程中,实现了还原氧化石墨烯(RGO,也称为 GR)和 CdS NSPs 与 GR 片之间的紧密界面接触。重要的是,CdS NSPs/GR 纳米复合材料在可见光照射下,对硝基有机物的选择性还原为相应的氨基有机物,表现出比裸 CdS NSPs 更高的光催化性能。CdS NSPs/GR 纳米复合材料具有优越的光催化性能,可归因于 CdS NSPs 与 GR 片之间的紧密界面接触,这最大限度地提高了 GR 的优异电子导电性和迁移率,从而显著有助于改善可见光照射下 CdS NSPs 中光生载流子的命运和转移。此外,可以有效地抑制 CdS 的光腐蚀和 GR 的光降解。CdS NSPs/GR 纳米复合材料的优异可重复使用性可归因于将 GR 引入 CdS NSPs 基质中以及添加甲酸铵作为光生空穴的猝灭剂的协同效应。希望我们目前的工作能够促进我们有效地利用这种简单有效的自组装策略,来合成具有可控形态的基于 GR 的半导体复合材料,更重要的是,拓宽 CdS/GR 纳米复合材料光催化剂的应用,并为探索和利用基于 GR 的半导体纳米复合材料作为可见光光催化剂进行有机转化提供新途径。

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