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首页> 外文期刊>ACS nano >Large-scale synthesis and phase transformation of CuSe, CuInSe_2, and CuInSe_2/CuInS_2 core/shell nanowire bundles
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Large-scale synthesis and phase transformation of CuSe, CuInSe_2, and CuInSe_2/CuInS_2 core/shell nanowire bundles

机译:CuSe,CuInSe_2和CuInSe_2 / CuInS_2核/壳纳米线束的大规模合成和相变

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Facile chemical approaches for the controllable synthesis of CuSe, CuInSe_2 nanowire, and CuInSe_2/CuInS_2 core/shell nanocable bundles were developed. Hexagonal CuSe nanowire bundles with lengths up to hundreds of micrometers, consisting of many aligned nanowires with a diameter of about 10-15 nm, were prepared by reacting cubic Cu_(2-x)Se nanowire bundles with a sodium citrate solution at room temperature. The CuSe nanowire bundles were then used as self-sacrificial templates for making bundles of tetragonal chalcopyrite CuInSe_2 nanowires by reacting with InCl_3 via a solvothermal process. Furthermore, bundles of CuInSe _2/CuInS_2 core/shell nanocables were obtained by adding sulfur to the reaction system, and the shell thickness of the polycrystalline CuInS_2 in the nanocables increased with increasing S/Se molar ratios. It was found that the small radius of copper ions allows their fast outward diffusion from the interior to the surface of nanowires to react with sulfur atoms/anions and indium ions to form a CuInS_2 shell. Enhanced optical absorption in the vis-NIR region of CuInSe_2/CuInS_2 core/shell nanocable bundles is demonstrated, which is considered beneficial for applications in optoelectronic devices and solar energy conversion.
机译:开发了可控合成CuSe,CuInSe_2纳米线和CuInSe_2 / CuInS_2核/壳纳米电缆束的简便化学方法。通过使立方Cu_(2-x)Se纳米线束与柠檬酸钠溶液在室温下反应来制备长度高达数百微米的六角形CuSe纳米线束,其由许多排列的直径约为10-15nm的纳米线组成。然后将CuSe纳米线束用作自我牺牲模板,通过溶剂热过程与InCl_3反应,制作四方黄铜矿CuInSe_2纳米线束。此外,通过向反应体系中添加硫获得了CuInSe _2 / CuInS_2核/壳纳米电缆的束,并且随着S / Se摩尔比的增加,纳米电缆中多晶CuInS_2的壳厚度增加。发现铜离子的小半径允许它们从纳米线的内部快速扩散到纳米线的表面,与硫原子/阴离子和铟离子反应形成CuInS_2壳。展示了在CuInSe_2 / CuInS_2核/壳纳米电缆束的vis-NIR区域增强的光吸收,这被认为有利于光电器件和太阳能转换中的应用。

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