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Hydrothermal synthesis of Mn-doped CdS hollow sphere nanocomposites as efficient visible-light driven photocatalysts

机译:Mn掺杂Cds中空球形纳米复合材料的水热合成为高效的可见光驱动光催化剂

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摘要

A series of Mn-doped CdS hollow sphere photocatalysts has been directly synthesized by a simple and facile hydrothermal route for the first time. It was demonstrated that GSH acts as the S source and a gas bubble-template in this process. The products were characterized by XRD, SEM, TEM, HRTEM, XPS, and UV-vis spectroscopy. The as-prepared CdS and Mn-doped CdS hollow spheres all showed much higher activity than P25 under visible light (lambda > 420 nm) irradiation. Among them, the 2.0 mol% Mn-doped CdS sample exhibited the highest photoactivity for the removal of organic pollutant RhB, and about 99.2% MO was decomposed after 50 min of visible light irradiation. Moreover, this catalyst also showed good stability, and after four cycles, the degradation efficiency still remained at 85%. The excellent photoactivity of the as-prepared Mn-doped CdS hollow spheres could be attributed to the synergistic effects of its appropriate band-gap structure and the special porous spherical morphology. The unique hollow sphere structure may favor the harvesting of excited light due to its special multiple scattering effect within the interior space, and the doping of Mn2+ may facilitate the generation of photoinduced electrons and hole pairs, and inhibit their recombination rate by acting as temporary trapping sites. This material may have great application potentials in environmental remediation and energy harvesting.
机译:一系列MN掺杂Cds中空球光催化剂是通过首次通过简单且容易的水热路线直接合成。据证明,GSH在该过程中作为S源和气泡模板作用。该产品的特征在于XRD,SEM,TEM,HRTEM,XPS和UV-VIS光谱。在可见光(Lambda> 420nm)照射下,AS制备的Cds和Mn掺杂Cds中空球体均显示比P25更高的活性。其中,2.0mol%Mn掺杂的CDS样品表现出最高的去除有机污染物RHB的光度接触,并且在50分钟的可见光照射后分解约99.2%的MO。此外,该催化剂还显示出良好的稳定性,并且在四个循环之后,降解效率仍保持在85%。所制备的Mn掺杂Cds中空球体的优异光度可归因于其适当的带隙结构和特殊多孔球形形态的协同效应。独特的中空球形结构可以利用由于内部空间内的特殊多散射效应而收集激发光,并且Mn2 +的掺杂可以促进光导电的电子和孔对的产生,并通过作为临时捕获来抑制它们的重组率网站。这种材料可能具有很大的环境修复和能量收集的应用潜力。

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  • 来源
    《RSC Advances》 |2015年第20期|共8页
  • 作者单位

    South Cent Univ Nationalities State Ethn Affairs Commiss Key Lab Catalysis &

    Mat Sci Wuhan 430074 Peoples R China;

    Liuzhou Teachers Coll Dept Phys &

    Informat Sci Liuzhou 545004 Peoples R China;

    South Cent Univ Nationalities State Ethn Affairs Commiss Key Lab Catalysis &

    Mat Sci Wuhan 430074 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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