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Antimony doped SnO2 nanowire@C core-shell structure as a high-performance anode material for lithium-ion battery

机译:锑掺杂SnO2纳米线@ C核壳结构作为锂离子电池的高性能阳极材料

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SnO2 is considered as one of the high specific capacity anode materials for Lithium-ion batteries. However, the low electrical conductivity of SnO2 limits its applications. This manuscript reports a simple and efficient approach for the synthesis of Sb-doped SnO2 nanowires (NWs) core and carbon shell structure which effectively enhances the electrical conductivity and electrochemical performance of SnO2 nanostructures. Sb doping was performed during the vapor-liquid-solid synthesis of SnO2 NWs in a horizontal furnace. Subsequently, carbon nanolayer was coated on the NWs using the DC Plasma Enhanced Chemical Vapor Deposition approach. The carbon-coated shell improves the Solid-Electrolyte Interphase stability and alleviates the volume expansion of the anode electrode during charging and discharging. The Sb-doped SnO2 core carbon shell anode showed the superior specific capacity of 585 mAhg(-1) after 100 cycles at the current density of 100 mA g(-1), compared to the pure SnO2 NWs electrode. The cycle stability evaluation revealed that the discharge capacity of pure SnO2 NWs and Sb doped SnO2 NWs electrodes were dropped to 52 and 152 mAh g(-1) after100th cycles. The process of Sb doping and carbon nano shielding of SnO2 nanostructures is proposed for noticeable improvement of the anode performance for SnO2 based materials.
机译:SnO2被认为是锂离子电池的高比容量负极材料之一。然而,SnO2的低导电性限制了其应用。本文报道了一种简单有效的合成掺锑SnO2纳米线(NWs)核壳结构的方法,有效地提高了SnO2纳米结构的导电性和电化学性能。Sb掺杂是在水平炉中进行SnO2纳米晶的汽-液-固合成过程中进行的。随后,使用直流等离子体增强化学气相沉积方法在NWs上涂覆碳纳米层。碳涂层外壳提高了固体电解质相间稳定性,并减轻了充电和放电期间阳极的体积膨胀。与纯SnO2 NWs电极相比,在100 mA g(-1)的电流密度下,掺Sb的SnO2核-碳壳阳极在100次循环后显示出585 mAhg(-1)的优越比容量。循环稳定性评估表明,经过100次循环后,纯SnO2 NWs和掺Sb SnO2 NWs电极的放电容量分别下降到52和152 mAh g(-1)。为了显著改善SnO2基材料的阳极性能,提出了SnO2纳米结构的Sb掺杂和碳纳米屏蔽工艺。

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