论文标题

屈曲扩散效应:对应变梯度诱导的锂扩散的强大影响

Flexo-diffusion effect: the strong influence on lithium diffusion induced by strain gradient

论文作者

Xu, Gao, Hao, Feng, Weng, Mouyi, Hong, Jiawang, Pan, Feng, Fang, Daining

论文摘要

锂离子电池(LIB)在复杂的外力场下工作,其电化学特性可以通过应变调节。由于电力耦合,微分离结构的变化会极大地影响固态电解质和LIB的电极材料的锂(LI)扩散速率。在这项研究中,我们发现双层石墨烯(BLG)中的应变梯度显着影响LI扩散屏障,该障碍物通过第一原理计算被称为柔韧性扩散效应。 LI扩散屏障在正/负应变梯度下大大减少/增加,导致LI扩散系数在300 K时的几个数量级中的变化。此外,我们的AB INEL分子动力学模拟(AIMD)表明,不对称扭曲的晶格结构为LI扩散提供了驱动力,从而导致沿正应变梯度方向的定向扩散。这些发现可以通过引入新型应变梯度工程来扩展目前的LIB技术。

Lithium ion batteries (LIBs) work under sophisticated external force field and its electrochemical properties could be modulated by strain. Owing to the electro-mechanical coupling, the change of micro-local-structures can greatly affect lithium (Li) diffusion rate in solid state electrolytes and electrode materials of LIBs. In this study, we find that strain gradient in bilayer graphene (BLG) significantly affects Li diffusion barrier, which is termed as the flexo-diffusion effect, through first-principles calculations. The Li diffusion barrier substantially decreases/increases under the positive/negative strain gradient, leading to the change of Li diffusion coefficient in several orders of magnitude at 300 K. Interestingly, the regulation effect of strain gradient is much more significant than that of uniform strain field, which can have a remarkable effect on the rate performance of batteries, with a considerable increase in the ionic conductivity and a slight change of the original material structure. Moreover, our ab initio molecular dynamics simulations (AIMD) show that the asymmetric distorted lattice structure provides a driving force for Li diffusion, resulting in oriented diffusion along the positive strain gradient direction. These findings could extend present LIBs technologies by introducing the novel strain gradient engineering.

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