2020/01/01 by Xu Gao, Gao Xu, Feng Hao +4
Chemistry · Materials Science · Medicine · Physics and Astronomy · #Boron and Carbon Nanomaterials Research #Chemical physics #Chemistry #Chromatography #Concentration gradient #Diffusion #Lithium (medication) #Magnetic Properties of Alloys #Materials science #Medicine #Physics #Shape Memory Alloy Transformations #Strain (injury) #Thermodynamics #cond-mat.mtrl-sci
paper · pdf · doi:10.1039/d0nr03746j
published as Nanoscale 12, 15175 (2020)
openalex publication_date 2020/01/01 · arxiv created 2020/02/13 · arxiv updated 2021/03/08 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28
Lithium ion batteries (LIBs) work under a sophisticated external force field and the electrochemical properties could be modulated by strain. Owing to electro-mechanical coupling, the change of micro local structures can greatly affect the lithium (Li) diffusion rate in solid state electrolytes and the electrode materials of LIBs. In this study, we found, through first-principles calculations, that the strain gradient in bilayer graphene (BLG) significantly affects the Li diffusion barrier, which is termed as the flexo-diffusion effect. The Li diffusion barrier substantially decreases/increases under a positive/negative strain gradient, leading to a change of Li diffusion coefficient of several orders of magnitude at 300 K. Interestingly, the regulation effect of strain gradient is much more significant than that of a 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. We predict the new phenomenon of a flexo-diffusion effect from a theoretical calculation aspect, these findings could extend present LIB technologies by introducing a novel strain gradient engineering.