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Improvement of alkali metal ion batteries via interlayer engineering of anodes: from graphite to graphene

机译:改进的碱金属离子电池通过从石墨阳极的夹层工程:对石墨烯

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摘要

Interlayer engineering of graphite anodes in alkali metal ion (M = Li, Na, and K) batteries is carried out based on the first-principles calculations. By increasing the interlayer spacing of graphite, the specific capacity of Li or Na does not increase while that of K increases continuously (from 279 mA h g(-1) at the equilibrium interlayer spacing to 1396 mA h g(-1) at the interlayer spacing of 20.0 angstrom). As the interlayer spacing increases, the electrostatic potential of graphite becomes smoother, and the ability to buffer the electrostatic potential fluctuation becomes poorer in M ions. These two effects jointly lead to minima of the diffusion barrier of M ions on graphite (0.01-0.05 eV), instead of strictly monotonous declines with the increasing interlayer spacing. To perform the interlayer engineering of anode candidates more efficiently, a set of high-throughput programs has been developed and can be easily applied to other systems. Our research has guiding significance for achieving the optimal effect in interlayer engineering experimentally.
机译:夹层工程的石墨阳极碱金属离子(M = Li Na, K)电池采用的基础上进行计算。石墨的间距,李的特定能力或Na并不K的增加而增加连续(从279 mA h g (1)平衡层间间距1396 mA h g (1)的层间间距20.0埃)。层间间距的增加,静电势的石墨流畅,能够缓冲静电势波动变得贫穷在M离子。的最小值M离子的扩散障碍石墨(0.01 - -0.05 eV),而不是严格与增加单调下降层间间距。工程的阳极候选人更有效率,一组高通量项目开发并可以很容易地应用到其他系统。在层间实现最佳的效果工程实验。

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