Journal
JOURNAL OF POWER SOURCES
Volume 230, Issue -, Pages 176-193Publisher
ELSEVIER
DOI: 10.1016/j.jpowsour.2012.12.034
Keywords
Lithium ion battery; Fracture; Plasticity; Energy release rate; Stress intensity factor; silicon
Funding
- National Research Foundation of Korea through WCU [R31-2009-000-10083-0]
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Li/Si undergoes significant softening in the form of rapid decreases in elastic modulus and yield stress as lithium concentration increases. To investigate how this lithiation-induced softening affects the fracture behavior of electrodes, we formulate a J-integral for coupled mechanical deformation and mass diffusion processes. This measure is used to analyze mechano-diffusional driving forces for fracture through simulations using a mixed finite element framework. Calculations show that under tensile loading, Li accumulates in front of crack tips, leading to an anti-shielding effect on the energy release rate. For a pre-cracked Li/Si thin-film electrode, it is found that the driving force for fracture is significantly lower when the electrode is operated at higher Li concentrations a result of more effective stress relaxation via global yielding. The results indicate that operation at higher concentrations is an effective means to minimize failure of thin-film Li/Si alloy electrodes. A design map for avoiding failure is developed. (C) 2012 Elsevier B.V. All rights reserved.
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