A thermal-electrochemical model that gives spatial-dependent growth of solid electrolyte interphase in a Li-ion battery

The formation of a SEI layer and its growth cause internal resistance increase and capacity loss, leading to performance degradation of lithium-ion batteries. In order to comprehensively investigate the effects of SEI growth on battery performance, a one-dimensional thermal-electrochemical model was...

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Veröffentlicht in:Journal of power sources 2014-12, Vol.268, p.482-490
Hauptverfasser: Liu, Lin, Park, Jonghyun, Lin, Xianke, Sastry, Ann Marie, Lu, Wei
Format: Artikel
Sprache:eng
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Zusammenfassung:The formation of a SEI layer and its growth cause internal resistance increase and capacity loss, leading to performance degradation of lithium-ion batteries. In order to comprehensively investigate the effects of SEI growth on battery performance, a one-dimensional thermal-electrochemical model was developed. This model is equipped with a growth mechanism of the SEI layer coupled with thermal evolution, based on the diffusional process of the solvent through the SEI layer and the kinetic process at the interface between the solid and liquid phases. The model is able to reveal the effects of diffusivity, reaction kinetics and temperature on SEI layer growth and cell capacity fade. We show that depending on the SEI thickness, the growth can be kinetics-limited or diffusion-limited. With the layer becoming thicker, its growth rate slows down gradually due to increased diffusion resistance. The SEI layer grows faster during charge than discharge due to the difference in the electron flux through the SEI layer and the temperature change during cycling. Temperature rise due to reaction and joule heating accelerates the SEI layer growth, leading to more capacity loss. Our model can provide insights on position-dependent SEI growth rate and be used to guide the strategic monitoring location. [Display omitted] •Integrated cell level thermal-electrochemical model with particle level SEI growth.•Predicted spatial-dependent SEI growth in Li-ion batteries.•SEI growth rate maximizes at the anode/separator interface.•Higher temperature accelerates SEI growth, leading to more capacity loss.
ISSN:0378-7753
1873-2755
DOI:10.1016/j.jpowsour.2014.06.050