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首页> 外文期刊>Nanotechnology >Large-scale growth of Cu_2ZnSnSe_4 and Cu _2ZnSnSe_4/Cu_2ZnSnS_4 core/shell nanowires
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Large-scale growth of Cu_2ZnSnSe_4 and Cu _2ZnSnSe_4/Cu_2ZnSnS_4 core/shell nanowires

机译:Cu_2ZnSnSe_4和Cu _2ZnSnSe_4 / Cu_2ZnSnS_4核/壳纳米线的大规模生长

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We present a fast and simple protocol for large-scale preparation of quaternary Cu_2ZnSnSe_4 (CZTSe), as well as CZTSe/Cu _2ZnSnS_4 (CZTS) core/shell nanowires using CuSe nanowire bundles as self-sacrificial templates. CuSe nanowire bundles were synthesized by reacting Cu_(2 - x)Se nanowire bundles with sodium citrate solution. CZTSe nanowires were prepared by reacting CuSe nanowire bundles with Zn(CH _3COO)_2 and SnCl_2 in triethylene glycol. X-ray diffraction (XRD) and selected area electron diffraction studies show that stannite CZTSe is formed. The formed CZTSe nanowire bundles have diameters of 200-400nm and lengths of up to hundreds of micrometers. CZTSe/CZTS nanocable bundles with similar morphologies were grown by the addition of some elemental sulfur to the reaction system for growth of CZTSe bundles. The stannite CZTSe/kesterite CZTS core/shell structure of the grown nanocables was confirmed by XRD and high-resolution transmission electron microscope investigation. The influence of S/Se molar ratio in the reaction system on the crystallographic structures and optical properties of CZTSe/CZTS nanocables was studied. The obtained CZTSe/CZTS core/shell nanocable bundles show broad and enhanced optical absorption over the visible and near-infrared region, which is promising for use in photovoltaic applications.
机译:我们提出了一种快速简单的协议,用于大规模制备季铵化Cu_2ZnSnSe_4(CZTSe),以及使用CuSe纳米线束作为自我牺牲模板的CZTSe / Cu _2ZnSnS_4(CZTS)核/壳纳米线。通过使Cu_(2-x)Se纳米线束与柠檬酸钠溶液反应来合成CuSe纳米线束。通过在三乙二醇中使CuSe纳米线束与Zn(CH _3COO)_2和SnCl_2反应制备CZTSe纳米线。 X射线衍射(XRD)和选定区域电子衍射研究表明,生成了亚锡矿CZTSe。形成的CZTSe纳米线束的直径为200-400nm,长度可达数百微米。通过向反应系统中添加一些元素硫以生长CZTSe束,可以生长出具有相似形态的CZTSe / CZTS纳米电缆束。通过XRD和高分辨率透射电子显微镜研究证实了所生长的纳米电缆的锡石CZTSe /钾长石CZTS核/壳结构。研究了反应体系中S / Se摩尔比对CZTSe / CZTS纳米电缆的晶体结构和光学性能的影响。所获得的CZTSe / CZTS核/壳纳米电缆束在可见光和近红外区域显示出广泛且增强的光吸收,这有望用于光伏应用。

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