Toward near-100% initial Coulombic efficiency of Si anodes through irreducible solid electrolyte-induced dynamic interphases
Wenxuan Zhao (TU Delft - Applied Sciences)
Zhu Cheng (TU Delft - Applied Sciences)
Anastasia K. Lavrinenko (TU Delft - Applied Sciences)
Alexandros Vasileiadis (TU Delft - Applied Sciences)
Moumita Rana (TU Delft - Electrical Engineering, Mathematics and Computer Science)
Meng fu Tu (TU Delft - Applied Sciences)
Lars Bannenberg (TU Delft - RID/TS/Instrumenten groep)
Victor Landgraf (TU Delft - Applied Sciences)
Yaolin Xu (Aalto University)
Swapna Ganapathy (TU Delft - Applied Sciences)
Marnix Wagemaker (TU Delft - Applied Sciences)
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Abstract
Silicon (Si) anodes promise high energy density for all-solid-state batteries (ASSBs), while avoiding Li-metal dendrites. However, one of the key limitations is the initial loss of active Li, reflected in a low initial Coulombic efficiency (ICE), arising from solid electrolyte (SE) decomposition, lithium trapping, and native oxide conversion. Here, we report an (electro)chemically guided interfacial-engineering strategy leveraging an irreducible SE to construct a dynamic nanoscale Si|SE interface that enhances ICE. The intrinsic stability of the SE down to the working potentials of Si anodes eliminates decomposition, whereas mechanochemical mixing activates interfacial reactions that realize in situ prelithiation. The engineered interface manifests efficient ion transport and replenishes Li inventory through redox reactions, while stabilizing electrochemical performance. Our approach delivers a record-high ICE approaching 100% in Si half-cells, together with >95% in high-loading LiCoO₂ full cells, demonstrating that precise interface control can unlock the full potential of Si anodes for high-energy ASSBs.
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File under embargo until 20-11-2026