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Highly Graphitized Carbon Coating on SiO with a π–π Stacking Precursor Polymer for High Performance Lithium-Ion Batteries

机译:高性能锂离子电池用π-π堆叠前体聚合物在SiO上高度石墨化碳涂层

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摘要

A highly graphitized carbon on a silicon monoxide (SiO) surface coating at low temperature, based on polymer precursor π–π stacking, was developed. A novel conductive and electrochemically stable carbon coating was rationally designed to modify the SiO anode materials by controlling the sintering of a conductive polymer, a pyrene-based homopolymer poly (1-pyrenemethyl methacrylate; PPy), which achieved high graphitization of the carbon layers at a low temperature and avoided silicon carbide formation and possible SiO material transformation. When evaluated as the anode of a lithium-ion battery (LIB), the carbon-coated SiO composite delivered a high discharge capacity of 2058.6 mAh/g at 0.05 C of the first formation cycle with an initial Coulombic efficiency (ICE) of 62.2%. After 50 cycles at 0.1 C, this electrode capacity was 1090.2 mAh/g (~82% capacity retention, relative to the capacity of the second cycle at 0.1 °C rate), and a specific capacity of 514.7 mAh/g was attained at 0.3 C after 500 cycles. Furthermore, the coin-type full cell composed of the carbon coated SiO composite anode and the Li[Ni0.5Co0.2Mn0.3O2] cathode attained excellent cycling performance. The results show the potential applications for using a π–π stacking polymer precursor to generate a highly graphitize coating for next-generation high-energy-density LIBs.
机译:基于聚合物前体π-π堆积,在低温下在一氧化硅(SiO)表面涂层上形成了高度石墨化的碳。通过控制导电聚合物,基均聚物聚(1-py甲基丙烯酸甲酯; PPy)的烧结,合理设计了一种新型的导电且电化学稳定的碳涂层,以改性SiO阳极材料,该涂层在碳层上实现了高石墨化低温,避免形成碳化硅和可能的SiO材料转变。当评估为锂离子电池(LIB)的阳极时,碳包覆的SiO复合材料在第一个形成周期的0.05 C下提供了2058.6 mAh / g的高放电容量,初始库仑效率(ICE)为62.2% 。在0.1 C下进行50次循环后,该电极容量为1090.2 mAh / g(相对于0.1°C速率下第二次循环的容量,容量保持率为〜82%),在0.3时达到514.7 mAh / g的比容量500次循环后C。此外,由碳包覆的SiO复合阳极和Li [Ni0.5Co0.2Mn0.3O2]阴极组成的纽扣型全电池获得了优异的循环性能。结果表明,使用π-π堆叠聚合物前驱体为下一代高能密度LIB生成高度石墨化涂层的潜在应用。

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