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首页> 外文期刊>Nanoscale >Encapsulating micro-nano Si/SiOx into conjugated nitrogen-doped carbon as binder-free monolithic anodes for advanced lithium ion batteries
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Encapsulating micro-nano Si/SiOx into conjugated nitrogen-doped carbon as binder-free monolithic anodes for advanced lithium ion batteries

机译:封装微纳米硅/ SiOx共轭nitrogen-doped碳binder-free铁板一块先进的锂离子电池的阳极

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Silicon monoxide, a promising silicon-based anode candidate for lithium-ion batteries, has recently attracted much attention for its high theoretical capacity, good cycle stability, low cost, and environmental benignity. Currently, the most critical challenge is to improve its low initial coulombic efficiency and significant volume changes during the charge-discharge processes. Herein, we report a binder-free monolithic electrode structure based on directly encapsulating micro-nano Si/SiOx particles into conjugated nitrogen-doped carbon frameworks to form monolithic, multi-core, cross-linking composite matrices. We utilize micro-nano Si/SiOx reduced by high-energy ball-milling SiO as active materials, and conjugated nitrogen-doped carbon formed by the pyrolysis of polyacrylonitrile both as binders and conductive agents. Owing to the high electrochemical activity of Si/SiOx and the good mechanical resiliency of conjugated nitrogen-doped carbon backbones, this specific composite structure enhances the utilization efficiency of SiO and accommodates its large volume expansion, as well as its good ionic and electronic conductivity. The annealed Si/SiOx/polyacrylonitrile composite electrode exhibits excellent electrochemical properties, including a high initial reversible capacity (2734 mA h g(-1) with 75% coulombic efficiency), stable cycle performance (988 mA h g(-1) after 100 cycles), and good rate capability (800 mA h g(-1) at 1 A g(-1) rate). Because the composite is naturally abundant and shows such excellent electrochemical performance, it is a promising anode candidate material for lithium-ion batteries. The binder-free monolithic architectural design also provides an effective way to prepare other monolithic electrode materials for advanced lithium-ion batteries.
机译:一氧化硅,硅阳极候选人的锂离子电池,最近因其高理论吸引了太多的关注容量、循环稳定性好,成本低,环境亲切。关键的挑战是改善其低初始库仑效率和巨大的体积在充放电过程中变化。在此,我们报告一个binder-free铁板一块基于直接的电极结构封装微纳米硅/ SiOx粒子共轭nitrogen-doped碳框架形式单一,多核,交联复合矩阵。减少了高能球磨SiO活跃材料和共轭nitrogen-doped碳热解形成的聚丙烯腈作为粘结剂和导电剂。Si / SiOx和高电化学活性良好的机械弹性共轭nitrogen-doped碳骨干,这个特定的复合结构提高了利用率SiO效率和适应其大体积膨胀,以及其良好的离子和电子导电率。Si / SiOx /聚丙烯腈复合电极表现出良好的电化学性能,包括首次可逆容量高马(2734 h g(1)库仑效率为75%),稳定的循环性能(988毫安h g (1)100周期),马和良好的速度能力(800 hg (1) 1 g(1)率)。是自然丰富,显示了这样优秀的吗电化学性能,它是一种很有前途的阳极候选人材料为锂离子电池。建筑设计还提供了一个有效的准备其他单片电极先进的锂离子电池的材料。

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