Abstract
A composite structure was developed for use in all-solid-state batteries that consists of a conductive 3D reduced graphene oxide framework embedded beneath cathode active material particles. This unique structure offers significant advantages when combined with a sulfide solid electrolyte as the heterogeneous distribution of the conductive carbon in the composite cathode ensures good contact between the carbon and cathode particles for facile electron transfer while a direct contact between the carbon and sulfide solid electrolyte is avoided or minimized. This approach assists in preventing or reducing unwanted irreversible faradaic reactions. As a result, the newly developed composite of cathode particles decorated on a 3D reduced graphene oxide framework delivers higher specific capacity with improved cycling stability compared with a typical composite cathode consisting of a homogenous mixture of the cathode active material, carbon nanofibers, and sulfide solid electrolyte.
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CITATION STYLE
Byeon, Y. W., Yang, S., Yang, G., Kim, D. M., Avvaru, V. S., Ogunfunmi, T., … Kim, H. (2024). Conductive carbon embedded beneath cathode active material for longevity of solid-state batteries. Journal of Materials Chemistry A, 12(14), 8359–8369. https://doi.org/10.1039/d4ta00674g
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