Literature DB >> 34263895

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

Jiachen Ma1, Chen Yang2, Xinjie Ma3, Shiqi Liu1, Jie Yang1, Linqiang Xu1, Jingsong Gao1, Ruge Quhe4, Xiaotian Sun5, Jinbo Yang6, Feng Pan7, Xiaoyu Yang8, Jing Lu9.   

Abstract

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 Å). 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.

Entities:  

Year:  2021        PMID: 34263895     DOI: 10.1039/d1nr01946e

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  1 in total

1.  Monolayer H-MoS2 with high ion mobility as a promising anode for rubidium (cesium)-ion batteries.

Authors:  Baichuan Lu; Xiaochi Liu; Jifeng Qu; Zesheng Li
Journal:  Nanoscale Adv       Date:  2022-07-21
  1 in total

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