A Multiscale, Dynamic Elucidation of Li Solubility in the Alloy and Metallic Plating Process

Author:

Li Shaowen1,Chai Zhigang2,Wang Zhaohui3ORCID,Tai Cheuk‐Wai4,Zhu Jiefang2,Edström Kristina2,Ma Yue1ORCID

Affiliation:

1. State Key Laboratory of Solidification Processing Center for Nano Energy Materials School of Materials Science and Engineering Northwestern Polytechnical University Xi'an 710072 China

2. Ångström Advanced Battery Centre (ÅABC) Department of Chemistry‐Ångström Laboratory Uppsala University SE‐75121 Uppsala Sweden

3. College of Materials Science and Engineering Hunan University Changsha 410082 China

4. Department of Materials and Environmental Chemistry Arrhenius Laboratory Stockholm University SE‐10691 Stockholm Sweden

Abstract

AbstractLi‐containing alloys and metallic deposits offer substantial Li+ storage capacities as alternative anodes to commercial graphite. However, the thermodynamically in sequence, yet kinetically competitive mechanism between Li solubility in the solid solution and intermediate alloy‐induced Li deposition remains debated, particularly across the multiple scales. The elucidation of the mechanism is rather challenging due to the dynamic alloy evolution upon the non‐equilibrium, transient lithiation processes under coupled physical fields. Here, influential factors governing Li solubility in the Li‐Zn alloy are comprehensively investigated as a demonstrative model, spanning from the bulk electrolyte solution to the ion diffusion within the electrode. Through real‐time phase tracking and spatial distribution analysis of intermediate alloy/Li metallic species at varied temperatures, current densities and particle sizes, the driving force of Li solubility and metallic plating along the Li migration pathway are probed in‐depth. This study investigates the correlation between kinetics (pronounced concentration polarization, miscibility gap in lattice grains) and rate‐limiting interfacial charge transfer thermodynamics in dedicating the Li diffusion into the solid solution. Additionally, the lithiophilic alloy sites with the balanced diffusion barrier and Li adsorption energy are explored to favor the homogeneous metal plating, which provides new insights for the rational innovation of high‐capacity alloy/metallic anodes.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shaanxi Province

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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