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Impact of solid-electrolyte interphase reformation on capacity loss in silicon-based lithium-ion batteries

Engineering and Technology

Impact of solid-electrolyte interphase reformation on capacity loss in silicon-based lithium-ion batteries

T. Vorauer, J. Schöggl, et al.

This compelling research by T. Vorauer and colleagues explores how high-density silicon composite anodes undergo significant transformations during cycling, leading to crucial insights into solid electrolyte interface (SEI) reformation and its impact on battery performance. The findings reveal how nanometer-sized SEI evolves, presenting challenges in material utilization and capacity retention.

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~3 min • Beginner • English
Abstract
High-density silicon composite anodes show large volume changes upon charging/discharging triggering the reformation of the solid electrolyte interface (SEI), an interface initially formed at the silicon surface. The question remains how the reformation process and accompanied material evolution, in particular for industrial up-scalable cells, impacts cell performance. Here, we develop a correlated workflow incorporating X-ray microscopy, field-emission scanning electron microscopy tomography, elemental imaging and deep learning-based microstructure quantification suitable to witness the structural and chemical progression of the silicon and SEI reformation upon cycling. The nanometer-sized SEI layer evolves into a micron-sized silicon electrolyte composite structure at prolonged cycles. Experimental-informed electrochemical modelling endorses an underutilisation of the active material due to the silicon electrolyte composite growth affecting the capacity. A chemomechanical model is used to analyse the stability of the SEI/silicon reaction front and to investigate the effects of material properties on the stability that can affect the capacity loss.
Publisher
Communications Materials
Published On
Jun 06, 2023
Authors
T. Vorauer, J. Schöggl, S. G. Sanadhya, M. Poluektov, W. D. Widanage, L. Figiel, S. Schädler, B. Tordoff, B. Fuchsbichler, S. Koller, R. Brunner
Tags
silicon composite anodes
solid electrolyte interface
cell performance
SEI reformation
capacity loss
chemomechanical model
material evolution
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