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首页> 外文期刊>Inorganic Chemistry Communications >Fabrication of Cu2O-RGO/BiVO4 nanocomposite for simultaneous photocatalytic CO2 reduction and benzyl alcohol oxidation under visible light
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Fabrication of Cu2O-RGO/BiVO4 nanocomposite for simultaneous photocatalytic CO2 reduction and benzyl alcohol oxidation under visible light

机译:Cu2O-rgo / Bivo4纳米复合材料在可见光下进行Cu2O-Rgo / BiVo4纳米复合材料的同时光催化CO2还原和苄醇氧化

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Cu2O-RGO/BiVO4 nanocomposite was obtained via a thermal treatment of Cu precursor in the presence of the pre-obtained RGO/BiVO4. The product was fully characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), high-resolution transmission electron microscopy (HRTEM) and UV-vis diffuse reflectance spectroscopy (DRS). It was found that olive-shaped BiVO4 of ca. 1.0-L2 mu m as well as small nanoparticles of Cu2O with a dimension of 40-50 nm were deposited on the surface of RGO. The as-formed Cu2O-RGO/BiVO4 nanocomposite exhibited superior photocatalytic activity for simultaneous CO2 reduction and benzyl alcohol oxidation under visible-light irradiation, as compared with bare Cu2O and RGO/BiVO4 nanocomposite. The superior photocatalytic performance observed over Cu2O-RGO/BiVO4 nanocomposite may be ascribed to the existence of the Z-Scheme charge transfer pathway in the nanocomposite, i.e., the photogenerated electrons transferred from BiVO4 to Cu2O to recombine with the photogenerated holes via RGO acting as a good electron mediator. The study demonstrates a high potential of using RGO to fabricate Z-Scheme photocatalytic systems for a variety of photocatalytic applications.
机译:通过在预先获得的rgo / Bivo4存在下通过Cu前体的热处理获得Cu2O-Rgo / Bivo4纳米复合材料。该产物通过X射线衍射(XRD),扫描电子显微镜(SEM),透射电子显微镜(TEM),高分辨率透射电子显微镜(HRTEM)和UV-VI扩散反射光谱(DRS)完全表征。结果发现了CA的橄榄色Bivo4。 1.0-L2μm以及尺寸为40-50nm的Cu2O的小纳米颗粒在Rgo的表面上沉积。与裸Cu2O和rgo / Bivo4纳米复合相比,AS形成的Cu2O-rgo / Bivo4纳米复合材料在可见光照射下同时同时CO 2还原和苄醇氧化。通过Cu2O-Rgo / Bivo4纳米复合材料观察到的优异的光催化性能可以归因于纳米复合材料中的Z方案电荷转移途径的存在,即,从BIVO4转移到CU 2 O中的光生电子通过RGO作用与光生孔重新组合。良好的电子介质。该研究表明使用RGO制造用于各种光催化应用的Z样品光催化系统的高潜力。

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