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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Constructing Ternary CdS-Graphene-TiO2 Hybrids on the Flatland of Graphene Oxide with Enhanced Visible-Light Photoactivity for Selective Transformation
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Constructing Ternary CdS-Graphene-TiO2 Hybrids on the Flatland of Graphene Oxide with Enhanced Visible-Light Photoactivity for Selective Transformation

机译:在具有增强的可见光光活性的氧化石墨烯平地上构建三元CdS-石墨烯-TiO2杂化物以进行选择性转化

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摘要

The ternary CdS-graphene-TiO2 hybrids (CdS-GR-TiO2) have been prepared through an in situ strategy on the flatland of graphene oxide (GO). The structure and properties have been characterized by a series of techniques, including X-ray diffraction (XRD), field-emission scanning electron microscopy (FE-SEM), transmission scanning electron microscopy (TEM), energy-dispersive X-ray spectroscopy (EDX), UV—vis diffuse reflectance spectra (DRS), electrochemical analysis, photoluminescence spectra (PL), nitrogen adsorption— desorption, and electron spin resonance spectra (ESR). Combined with our previous results, it is found that the introduction of the third-component TiO2 can maintain the morphology and porosity of the samples, whereas it is able to tune the energy band, increase the surface area, and facilitate the electron transfer, thus prolonging the lifetime of photogenerated carriers, Taking photo catalytic selective oxidation of various alcohols to their corresponding aldehydes as model reactions, the ternary CdS—GR—TiO2 hybrid exhibits enhanced photocatalytic activity compared with its foundation matrix binary CdS—GR. The improved photocatalytic performance can be attributed to the combined interaction of the longer lifetime of photogenerated electron—hole pairs, faster interfacial charge transfer rate, and larger surface area. In addition, a possible reaction mechanism has been proposed. This work indicates that the careful design of graphene—based composites by coupling graphene to suitable, multiple semiconductors allows the achievement of more efficient photocatalysts, which may have the great potential to improve the capacity for photocatalytic processes significantly. As a proof-of-concept, it is expected that this work could offer new inroads into exploration and utilization of graphene—based nanocomposites as a fertile ground for energy conversion.
机译:CdS-石墨烯-TiO2三元杂化物(CdS-GR-TiO2)是通过在氧化石墨烯(GO)的平地上原位制备的。结构和性能已通过一系列技术进行了表征,包括X射线衍射(XRD),场发射扫描电子显微镜(FE-SEM),透射扫描电子显微镜(TEM),能量色散X射线光谱( EDX),UV-可见漫反射光谱(DRS),电化学分析,光致发光光谱(PL),氮吸附-解吸和电子自旋共振光谱(ESR)。结合我们先前的结果,发现引入第三组分TiO2可以保持样品的形貌和孔隙率,同时能够调节能带,增加表面积并促进电子转移,因此延长光生载流子的寿命,以各种醇的光催化选择性氧化为其相应的醛为模型反应,与基础基质二元CdS-GR相比,CdS-GR-TiO2三元杂化物表现出增强的光催化活性。光催化性能的提高可归因于光生电子-空穴对的更长寿命,更快的界面电荷转移速率和更大的表面积的共同相互作用。另外,已经提出了可能的反应机理。这项工作表明,通过将石墨烯偶联至合适的多种半导体对石墨烯基复合材料进行精心设计,可以实现更有效的光催化剂,这可能具有极大地提高光催化能力的潜力。作为概念验证,预计这项工作可以为基于石墨烯的纳米复合材料的探索和利用提供新的途径,以作为能量转换的沃土。

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