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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Amorphous molybdenum sulfide as highly efficient electron-cocatalyst for enhanced photocatalytic H-2 evolution
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Amorphous molybdenum sulfide as highly efficient electron-cocatalyst for enhanced photocatalytic H-2 evolution

机译:非晶态硫化钼作为高效电子助催化剂,可促进光催化H-2的生成

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摘要

Exploiting novel and high-performance electron-cocatalysts without noble metallic element is of great significance for photocatalytic H-2-evolution reaction. Molybdenum sulfide is one of the promising candidates of such electron-cocatalysts, but its present performance is intrinsically restrained by the scarce active sites of unsaturated S atoms. In this study, amorphous MoSx (a-MoSx) nanoparticles were directly anchored on the g-C3N4 surface by an adsorption-in situ transformation method with the aim of improving photocatalytic H-2-evolution activity. It was found that compared with the crystalline molybdenum sulfide (c-MoS2), the a-MoSx cocatalyst clearly exhibited more unsaturated active S atoms due to its highly irregular arrangement structure. Photocatalytic experimental results suggested that the H-2-evolution activity of g-C3N4 photocatalyst could be obviously improved by loading a-MoSx cocatalyst, which is obviously higher than that of unmodified g-C3N4 and c-MoS2/g-C3N4. More importantly, in addition to the g-C3N4, the amorphous MoSx could also work as the efficient electron cocatalyst to greatly enhance the photocatalytic performance of conventional H-2-evolution materials such as TiO2 (a typical UV-light photocatalyst) and CdS (a typical Vis-light photocatalyst). On the basis of the present results, an electron-cocatalyst mechanism of amorphous MoSx was proposed to account for the improved photocatalytic H-2-evolution activity, namely, the amorphous MoSx can provide more unsaturated active S atoms as the efficient active sites to rapidly capture protons from solution, and then promote the direct reduction of H+ to H-2 by photogenerated electrons. Considering its low cost and high efficiency, the amorphous MoSx cocatalyst would have great potential for the development of high-performance photocatalytic materials used in various fields. (C) 2016 Elsevier B.V. All rights reserved.
机译:开发新型的不含贵金属元素的高性能电子助催化剂对光催化H-2-演化反应具有重要意义。硫化钼是此类电子助催化剂的有前途的候选之一,但其目前的性能本质上受到不饱和S原子稀缺的活性位的限制。在这项研究中,非晶态MoSx(a-MoSx)纳米粒子通过吸附原位转化方法直接锚固在g-C3N4表面,目的是提高光催化H-2-演化活性。已发现,与结晶的硫化钼(c-MoS2)相比,a-MoSx助催化剂由于其高度不规则的排列结构而明显表现出更多的不饱和活性S原子。光催化实验结果表明,负载a-MoSx助催化剂可以明显提高g-C3N4光催化剂的H-2-演化活性,明显高于未修饰的g-C3N4和c-MoS2 / g-C3N4。更重要的是,除了g-C3N4以外,非晶态MoSx还可以作为有效的电子助催化剂,大大提高传统的H-2-演化材料的光催化性能,例如TiO2(一种典型的紫外光催化剂)和CdS(典型的可见光光催化剂)。根据目前的结果,提出了非晶态MoSx的电子助催化剂机制,以说明光催化H-2-演化活性的提高,即非晶态MoSx可以提供更多的不饱和活性S原子作为快速有效的活性位点。捕获溶液中的质子,然后促进光生电子将H +直接还原为H-2。考虑到其低成本和高效率,无定形MoSx助催化剂将具有开发用于各个领域的高性能光催化材料的巨大潜力。 (C)2016 Elsevier B.V.保留所有权利。

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