DOE OSTI · 1776603
Semi-solid alkali metal electrodes enabling high critical current densities in solid electrolyte batteries
Abstract
The need for higher energy density rechargeable batteries has generated interest in alkali metal electrodes paired with solid electrolytes. However, metal penetration and electrolyte fracture at low current densities have emerged as fundamental barriers. Here, we show that for pure metals in the Li-Na-K system, the critical current densities scale inversely to mechanical deformation resistance. Furthermore, we demonstrate two electrode architectures in which the presence of a liquid phase enables high current densities while preserving the shape retention and packaging advantages of solid electrodes. First, biphasic Na-K alloys show K + critical current densities (with K-β*-Al 2 O 3 electrolyte) that exceed 15 mA∙cm -2 . Second, introducing a wetting interfacial film of Na-K liquid between Li metal and Li 6.75 La 3 Zr 1.75 Ta 0.25 O 12 (LLZTO) solid electrolyte doubles the critical current density and permits cycling at areal capacities exceeding 3.5 mAh∙cm -2 . These design approaches hold promise for overcoming electro-chemo-mechanical stability issues that have heretofore limited performance of solid-state metal batteries.
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Park, Richard J.-Y., Eschler, Christopher M., Fincher, Cole D., Badel, Andres F., Guan, Pinwen, Pharr, Matt, Sheldon, Brian W., Carter, W. Craig, Viswanathan, Venkatasubramanian, Chiang, Yet-Ming. 2021-03-15. Semi-solid alkali metal electrodes enabling high critical current densities in solid electrolyte batteries. https://doi.org/10.1038/s41560-021-00786-w
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