首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Interfacial self-assembly engineering for constructing a 2D flexible superlattice polyoxometalate/rGO heterojunction for high-performance photovoltaic devices
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Interfacial self-assembly engineering for constructing a 2D flexible superlattice polyoxometalate/rGO heterojunction for high-performance photovoltaic devices

机译:用于构建高性能光伏器件的2D柔性超晶格多晶管/ RGO异质结的界面自组装工程

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摘要

2D materials have strong intermolecular van der Waals forces, and 2D superlattice heterostructures have exhibited many dramatic photo-electrochemical properties for energy conversion and storage. Herein, based on the excellent properties of reduced graphene and superlattice structures, we constructed a 2D flexible superlattice polyoxometalate/rGO heterojunction with enhanced electron-hole separation via interfacial self-assembly engineering to further fabricate DSSCs based on the heterojunction-modified photoanode, which exhibited good electron transport properties. Selecting two kinds of Dawson POMs (P2W15V3, P2W18 and the corresponding heteropoly blue) as the research object, the polyoxometalate superlattice structure was obtained by the self-assembly strategy, and characterized by IR, UV-Vis, XRD, EDX and XPS. The TEM and AFM results indicated that the monolayer POM superlattice structure and superlattice polyoxometalate/rGO heterojunction were successfully obtained. The superlattice P2W18(HPB)/rGO heterojunction was introduced into the DSSCs photoanode, and electrochemical tests indicated that the superlattice polyoxometalate/rGO heterojunction improved the electron-hole separation rate, inhibited the electron recombination, and improved the photoelectric conversion efficiency to 8.09%. The 2D superlattice heterojunction remarkably improved the electrochemical performances of the energy storage and conversion systems.
机译:2D材料具有强的分子间范德华力,2D超晶格异质结构表现出许多戏剧性光电化学性能,用于能量转化和储存。在此,基于石墨烯和超晶格结构的优异性质,通过界面自组装工程构建了2D柔性超晶格多晶管/ rgo异质结,其通过界面自组装工程来进一步制造基于展示的异质连接的光电码来制造DSSCS良好的电子传输性能。选择两种Dawson Poms(P2W15V3,P2W18和相应的杂多蓝色)作为研究对象,通过自组装策略获得多氧化盐超晶格结构,其特征在于IR,UV-Vis,XRD,EDX和XPS。 TEM和AFM结果表明,成功地获得了单层POM超晶格结构和超晶片多晶硅酸盐/ rgo异质结。将超晶格P2W18(HPB)/ RGO异质结引入DSSCS光电码,电化学测试表明,超晶格多晶硅酸盐/ RGO异质结抑制了电子复合率,并将光电转换效率提高至8.09%。 2D超晶格异质结显着改善了能量存储和转换系统的电化学性能。

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