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首页> 外文期刊>Materials Chemistry Frontiers >Simple glycerol-assisted and morphology controllable solvothermal synthesis of CeVO4/ BiVO4 hierarchical hollow microspheres with enhanced photocatalytic activities
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Simple glycerol-assisted and morphology controllable solvothermal synthesis of CeVO4/ BiVO4 hierarchical hollow microspheres with enhanced photocatalytic activities

机译:简单的glycerol-assisted和形态可控solvothermal合成CeVO4 /BiVO4分层中空微球提高光催化活性

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摘要

CeVO4 hierarchical hollow microspheres with various morphologies have been synthesized via a simple glycerol (Gl)-assisted solvothermal route. They are constructed using different morphological nanoscaled units (nanoflakes, nanorods and nanowires) by adjusting the solvent ratio of the system. The Gl and L-aspartic acid (L-Asp) molecules act as structure–directing agents, meaning the CeVO4 hierarchical materials feature adjustable structural variations with 0D, 1D, and 2D structures. A possible formation mechanism is proposed based on the Gl content-dependent and time-dependent morphological evolution results. Under visible-light irradiation, the degradation results towards methylene blue (MB) indicate that the photocatalytic performance of the CeVO4/BiVO4 composites could be easily tuned by simply varying the Gl content ratio and the amount of BiVO4 NPs. Compared with pristine CeVO4,the photodegradation efficiency of the hierarchical nanowires-assembled CeVO4/BiVO4 hollow microspheres exhibit a two-fold increase after doping with 10% BiVO4 and the degradation rate reached 97.8% in 30 min. Owing to the easy fabrication, our strategy may provide broad possibilities for the future development of other hollow micro/nanostructures that exhibit an efficient performance.
机译:CeVO4分层中空微球通过合成各种形态简单的甘油(Gl)资助建设solvothermal路线。它们是用不同的构造形态纳米单位(nanoflakes,纳米棒和纳米线)通过调整溶剂系统的比率。(L-Asp)分子作为一类的代理,这意味着CeVO4等级材料特性可调结构变化与0 d,1 d, 2 d结构。提出了基于Gl的机制content-dependent和时间形态进化的结果。可见光照射,退化结果对亚甲蓝(MB)表示的光催化性能CeVO4 / BiVO4复合材料可以很容易地通过不同的Gl内容比例和数量的BiVO4 NPs。光降解效率的层次nanowires-assembled CeVO4 / BiVO4空洞微球具有双重的增加掺杂BiVO4和降解率为10%在30分钟达到97.8%。由于容易制造,我们的策略可以提供广泛的未来发展的可能性中空的微/纳米结构,表现出一个高效的性能。

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