首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Fabrication of Hierarchical Co9S8@ZnAgInS Heterostructured Cages for Highly Efficient Photocatalytic Hydrogen Generation and Pollutants Degradation
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Fabrication of Hierarchical Co9S8@ZnAgInS Heterostructured Cages for Highly Efficient Photocatalytic Hydrogen Generation and Pollutants Degradation

机译:用于高效光催化氢生成和污染物降解的高效光催化氢气杂交笼的制造杂交CO9S8 @ Znagins异质结构笼

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In the present study, a hierarchical Co9S8@ZnAginS heterostructural cage was developed for the first time which can photocatalytically produce hydrogen and degrade organic pollutants with high efficiency. First, the Co9S8 dodecahedron was synthesized using a metal-organic framework (MOFs) material, ZIF-67, as a precursor, then two kinds of metal sulfide semiconductors were elaborately integrated into a hierarchical hollow heterostructural cage with coupled heterogeneous shells and 2D nanosheet subunits. The artfully designed hollow heterostructural composite exhibited remarkable photocatalytic activity without using any cocatalysts, with a 9395.3 mu mol g(-1) h(-1) H-2 evolution rate and high degradation efficiency for RhB. The significantly enhanced photocatalytic activity can be attributed to the unique architecture and intimate-contact interface between Co9S8 and ZnAgInS, which promote the transfer and separation of the photogenerated charges, increase light absorption, and offer large surface area and active sites. This work presents a new strategy to design highly active semiconductor photocatalysts by using MOF materials as precursors and coupling of metal sulfide semiconductors to form hollow architecture dodecahedron cages with an intimate interface.
机译:在本研究中,分层Co9S8 @ ZnAginS异质结构笼首次可光催化产生氢和降低与高效率的有机污染物显影。首先,Co9S8十二面是使用金属 - 有机构架(MOF的)材料,ZIF-67合成,作为前体,则两种金属硫化物半导体被精心集成到分级中空异质结构笼联接异构壳和2D纳米片亚基。巧妙地设计中空异质结构的复合表现出显着的光催化活性,而无需使用任何助催化剂,用9395.3亩摩尔克(-1)H(-1)H-2生成速率和罗丹明B高降解效率。的显著增强的光催化活性可以归因于Co9S8和ZnAgInS,其促进光生电荷的转移和分离之间的独特的建筑和亲密接触界面,提高光吸收,并提供大的表面积和活性位点。这项工作提出了新的策略,通过使用MOF材料作为前体和金属硫化物半导体耦合以形成中空结构十二面体与亲密接口笼子设计高度有源半导体光催化剂。

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