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Synthesis of Si and tin-doped Si powders via gas-phase sodium reduction for Li-ion batteries

机译:锂离子电池气相钠还原法合成Si和掺锡Si粉

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Pure silicon nano-powder was successfully synthesized via gas-phase sodium reduction of silicon tetrachloride, exhibiting 100% conversion of the reactants and achieving >95% yield of the final product. The interactions of the process conditions and tin-doping with the particle morphology were investigated. The produced powders were analyzed by nitrogen adsorption, transmission and scanning electron microscopy, X-ray diffraction, inert gas fusion analysis and glow discharge mass spectroscopy. The washed polycrystalline silicon particles had a BET surface area in the range of 23-44 m(2)/g. The silicon aciniform aggregates consisted of relatively homogeneous primary particles in the range of 20-100 nm. The silicon was protected by a 2-3 nm thick passivation layer established during the washing step resulting in an oxygen content of less than 3 wt.%. Electrochemical testing demonstrated a high inherent capacity for the pure Si powders. The initial capacity and 1st cycle charge efficiency of Si-containing anode electrodes was dependent on the initial powder surface area. The highest capacity was achieved for Si powders with intermediate BET surface area of 28.5 m(2)/g and cells with this anode material delivered capacity of 2651 mA h/g (normalized to Si) and 82.4% efficiency at first charge. (C) 2015 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan.
机译:通过气相氯化四氯化钠钠还原法成功合成了纯硅纳米粉,其反应物的转化率为100%,最终产物的收率> 95%。研究了工艺条件和锡掺杂与颗粒形貌的相互作用。通过氮气吸附,透射和扫描电子显微镜,X射线衍射,惰性气体熔融分析和辉光放电质谱法分析所产生的粉末。洗涤过的多晶硅颗粒的BET表面积为23-44m(2)/ g。硅粉状聚集体由20-100nm范围内的相对均匀的初级颗粒组成。硅被在洗涤步骤期间建立的2-3nm厚的钝化层保护,导致氧含量小于3重量%。电化学测试表明,纯硅粉具有很高的固有容量。含硅阳极的初始容量和第一循环充电效率取决于初始粉末表面积。具有中等BET表面积为28.5 m(2)/ g的Si粉和具有该阳极材料的电池的最高容量达到了2651 mA h / g(标准化为Si),首次充电时效率为82.4%。 (C)2015年日本粉末技术学会。由Elsevier B.V.和日本粉末技术学会出版。

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