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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >From magnetic cubic pre-kesterite to semiconducting tetragonal kesterite Cu2ZnSnS4 nanopowders via the mechanochemically assisted route
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From magnetic cubic pre-kesterite to semiconducting tetragonal kesterite Cu2ZnSnS4 nanopowders via the mechanochemically assisted route

机译:通过机械化学辅助路线从磁性立方前酯矿石到半导体四方ketertITe Cu2ZnSn4纳米粉末

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Presented is a study on the mechanochemically assisted synthesis of kesterite Cu2ZnSnS4 from the elements for photovoltaic applications. Initial application of high energy ball milling under selected conditions, including the highest achievable rotation speeds up to 1000 rpm, affords a pure cubic nanophase with the nominal kesterite composition. The phase is tentatively called a pre-kesterite and it is shown by EPR to be magnetic. Accordingly, it does not produce either Cu-65 or Sn-119 MAS NMR spectra. Also, the material shows no well-defined absorption in the UV-vis range and, based on this, does not exhibit definite semiconducting properties. The highly disordered and defected structure with random metal site occupation originated in the mechanochemical synthesis step is proposed to account for the observed properties of pre-kesterite. Upon subsequent pyrolysis under argon at temperatures above 300 degrees C, preferably at around 500 degrees C, the cubic phase is converted to the tetragonal phase of kesterite, apparently, by metal site reconfiguration. The annealed nanopowders show the expected Cu-65 and Sn-119 MAS NMR characteristics. The Raman spectra support similar bonding environment and lattice phonon characteristics for both related phases as well as the eventual formation of kesterite nanopowders whereas their UV-vis spectra provide the direct band gap in the range of 1.35-1.48 eV, typical for semiconducting kesterite. (C) 2018 Elsevier B.V. All rights reserved.
机译:提出是从用于光伏应用的元件的机械化学辅助合成基础辅助Cu2ZnSns4的研究。在所选条件下的高能球铣削的初始施加,包括最高可实现的旋转速度高达1000rpm,得到纯立方纳米相位,具有标称烯酯组合物。暂时称为kEsterite的相位,通过EPR显示磁性。因此,它不会产生Cu-65或Sn-119MAMS NMR光谱。而且,该材料在UV-VIS范围内显示不明确的吸收,并且基于此,不表现出明确的半导体性质。提出了在机械化学合成步骤中具有随机金属位点占用的高紊乱和缺陷的结构,以考虑观察到的酯预酸酯的性质。在300℃的温度下氩气下的后续热解后,优选在约500℃的温度下,立方相通过金属部位重新配置转化为ketertite的四方相。退火的纳米粉末显示出预期的Cu-65和Sn-119 Mas NMR特性。拉曼光谱支持相关阶段的类似粘合环境和晶格声子特征以及克塞特纳米粉末的最终形成,而它们的UV-Vis光谱在1.35-1.48eV的范围内提供直接带隙,用于半导体ketertite的典型。 (c)2018年elestvier b.v.保留所有权利。

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