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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Core-shell Cd0.2Zn0.8S@BiOX (X = Cl, Br and I) microspheres: a family of hetero-structured catalysts with adjustable bandgaps, enhanced stability and photocatalytic performance under visible light irradiation
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Core-shell Cd0.2Zn0.8S@BiOX (X = Cl, Br and I) microspheres: a family of hetero-structured catalysts with adjustable bandgaps, enhanced stability and photocatalytic performance under visible light irradiation

机译:核-壳Cd0.2Zn0.8S@BiOX(X = Cl,Br和I)微球:带隙可调的杂化结构催化剂系列,在可见光照射下具有更高的稳定性和光催化性能

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摘要

Heterostructures consisting of two semiconductors have merited considerable attention in photocatalytic applications due to synergistic effects in complex redox processes. The incorporation of solid solutions into such architectures can further offer extra variability to control the bandgap. In this study, we report the fabrication of a series of core-shell Cd0.2Zn0.8S@BiOX (X = Cl, Br and I) microspheres via a solvothermal route that lead to enhanced photocatalytic performance under visible light irradiation. By optimizing the synthesis conditions, uniform and porous Cd0.2Zn0.8S@BiOX microspheres were achieved. The products were thoroughly characterized by X-ray diffraction studies, scanning electron microscopy, transmission electron microscopy, photoluminescence studies, absorption measurements and the photo-degradation of RhB. Remarkably, the electronic structures of Cd0.2Zn0.8S@BiOX composites can be continuously tuned by varying the composition of BiOX to achieve the best catalytic performance under visible light irradiation. Finally, this greatly enhanced visible-light-driven photocatalytic efficiency was observed in the optimized Cd0.2Zn0.8S@BiOI composites when compared to their single-component counterparts, which may be attributed to increased light absorption and improved electron-hole separation. The photocatalytic mechanism has also been proposed based on the experimental evidences and the theoretical band positions of Cd0.2Zn0.8S@BiOI.
机译:由两种半导体组成的异质结构由于在复杂的氧化还原过程中的协同作用而在光催化应用中引起了极大的关注。将固态解决方案并入此类体系结构可进一步提供额外的可变性,以控制带隙。在这项研究中,我们报告通过溶剂热途径制造了一系列核壳型Cd0.2Zn0.8S@BiOX(X = Cl,Br和I)微球,这导致可见光辐照下光催化性能增强。通过优化合成条件,获得了均匀,多孔的Cd0.2Zn0.8S@BiOX微球。通过X射线衍射研究,扫描电子显微镜,透射电子显微镜,光致发光研究,吸收测量和RhB的光降解,对产品进行了全面表征。值得注意的是,可以通过改变BiOX的组成来连续调节Cd0.2Zn0.8S@BiOX复合材料的电子结构,从而在可见光照射下获得最佳的催化性能。最后,与单组分复合材料相比,在优化的Cd0.2Zn0.8S@BiOI复合材料中观察到这种大大提高的可见光驱动的光催化效率,这可能归因于增加的光吸收和改善的电子-空穴分离。根据实验证据和Cd0.2Zn0.8S@BiOI的理论能带位置,提出了光催化机理。

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