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首页> 外文期刊>Advanced Functional Materials >In Situ Synthesis of Graphene-Coated Silicon Monoxide Anodes from Coal-Derived Humic Acid for High-Performance Lithium-Ion Batteries
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In Situ Synthesis of Graphene-Coated Silicon Monoxide Anodes from Coal-Derived Humic Acid for High-Performance Lithium-Ion Batteries

机译:原位合成石墨烯涂覆的煤酸型腐殖酸,用于高性能锂离子电池的煤酸

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Silicon monoxide (SiO) is attaining extensive interest amongst silicon-based materials due to its high capacity and long cycle life; however, its low intrinsic electrical conductivity and poor coulombic efficiency strictly limit its commercial applications. Here low-cost coal-derived humic acid is used as a feedstock to synthesize in situ graphene-coated disproportionated SiO (D-SiO@G) anode with a facile method. HR-TEM and XRD confirm the well-coated graphene layers on a SiO surface. Scanning transmission X-ray microscopy and X-ray absorption near-edge structure spectra analysis indicate that the graphene coating effectively hinders the side-reactions between the electrolyte and SiO particles. As a result, the D-SiO@G anode presents an initial discharge capacity of 1937.6 mAh g(-1) at 0.1 A g(-1) and an initial coulombic efficiency of 78.2%. High reversible capacity (1023 mAh g(-1) at 2.0 A g(-1)), excellent cycling performance (72.4% capacity retention after 500 cycles at 2.0 A g(-1)), and rate capability (774 mAh g(-1) at 5 A g(-1)) results are substantial. Full coin cells assembled with LiFePO4 electrodes and D-SiO@G electrodes display impressive rate performance. These results indicate promising potential for practical use in high-performance lithium-ion batteries.
机译:由于其高容量和长循环寿命,硅一氧化铁(SIO)在基于硅基材料中获得了广泛的兴趣;然而,其低固有电导率和差的库仑效率严格限制其商业应用。这里,低成本的煤衍生的腐殖酸用作原料以合成原位石墨烯 - 涂覆的不成比例的SiO(D-SiO @)阳极以容易方法合成。 HR-TEM和XRD在SiO表面上确认涂层的石墨烯层。扫描透射X射线显微镜和X射线吸收近边缘结构光谱分析表明石墨烯涂层有效地阻碍了电解质和SiO颗粒之间的副反应。结果,D-SIO @ G阳极在0.1Ag(-1)的初始放电容量为1937.6mAhg(-1),初始库仑效率为78.2%。高可逆容量(1023mAhg(-1),在2.0 a g(-1)),优异的循环性能(在2.0克(-1)的500次循环后72.4%的容量保留),以及速率能力(774mah g( -1)在5A(-1))下)结果是显着的。用LifePO4电极组装的全币电池和D-SIO @ G电极显示出令人印象深刻的速率性能。这些结果表明了高性能锂离子电池的实际应用潜力。

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