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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Top or Bottom, Assembling Modules Determine the Photocatalytic Property of the Sheetlike Nanostructured Hybrid Photocatalyst Composed with Sn3O4 and rGO (GQD)
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Top or Bottom, Assembling Modules Determine the Photocatalytic Property of the Sheetlike Nanostructured Hybrid Photocatalyst Composed with Sn3O4 and rGO (GQD)

机译:顶部或底部,组装模块确定用SN3O4和RGO(GQD)组成的片状纳米结构杂合光催化剂的光催化性能

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摘要

The outstanding visible-light photocatalytic properties of Sn3O4 nanosheets and excellent electron-trapping-ability-induced photo-induced-carrier-separation enhancement ability of zero-band rGO (reduced graphene oxide) nanosheets are well-known. Therefore, integration of Sn3O4 nanosheets and rGO nanosheets to prepared hybrid nanostructures has been thought of as a general strategy for synthesis of high-performance photocatalysts. However, the structural and property difference of assembling modules, such as decoration of GQDs (graphene quantum dots) on Sn3O4 nanoflakes, or distributing Sn3O4 nanoflakes on rGO nanosheets, could be the key to design high-performance Sn3O4/rGO hybrid photocatalysts. Up to now, there is no literature relating to this topic. Here, a simple microwave-assisted hydrothermal method has been reported for the fabrication of Sn3O4/GQD and Sn3O4/rGO sheetlike nano-heterostructured hybrid photo catalysts. Two photocatalysts following a different assembling modulus appeared to have different photocatalytic performances. The visible-light-active Sn3O4/GQD sheetlike nano-heterostructured hybrids show efficient and stable photocatalytic water splitting, the rate of H-2 (hydrogen) evolution reaching 90 mu mol/(g h), a rate 4.5 times higher than that of Sn3O4/rGO and 20 times than that of benign Sn3O4. The underlying mechanism has been investigated by photoelectrochemical measurement, ERS (electron spin-resonance spectroscopy), and PL (photoluminescence) spectra analysis. The present work demonstrates a facile method for synthesizing highly active photocatalysts for solar hydrogen generation, and gave an outline for the design of graphene-based sheetlike photocatalysts.
机译:SN3O4纳米片的出色的可见光光催化性能和优异的电子捕集能力诱导的零带Rgo(氧化石墨烯)纳米片的光诱导的载体分离增强能力是众所周知的。因此,SN3O4纳米片和Rgo纳米片的整合已被认为是作为合成高性能光催化剂的一般策略。然而,组装模块的结构和性能差异,例如SN3O4纳米薄片上的GQDS(石墨烯量子点),或在RGO纳米片上分配SN3O4纳米薄片,可以是设计高性能SN3O4 / RGO混合光催化剂的关键。到目前为止,没有与本主题相关的文献。这里,已经报道了一种简单的微波辅助水热法用于制备SN3O4 / GQD和SN3O4 / RGO片材状纳米异质结构杂交光催化剂的制备。在不同的组装模量之后的两个光催化剂似乎具有不同的光催化性能。可见光活性的SN3O4 / GQD片状纳米异质结构杂交杂交种显示出高效稳定的光催化水分裂,H-2(氢)进化率达到90μmol/(GH),比SN3O4高4.5倍/ rgo和20次比良性的SN3O4。通过光电化学测量,ERS(电子旋转共振光谱谱)和PL(光致发光)光谱分析研究了潜在的机制。本作本作者说明了一种用于合成用于太阳能氢气的高活性光催化剂的容易催化剂,并为基于石墨烯的片状光催化剂进行了概述。

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