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Fluoroethylene carbonate (FEC) has garnered widespread recognition for its beneficial role in improving the electrochemical performance of lithium (Li)-metal batteries; however, its role in alleviating interface instability of sodium (Na)-metal electrodes remains poorly understood. In this work, we show that, instead of stabilizing the Na electrode, in a conventional porous glass fiber separator-based cell, FEC induces spatial and chemical heterogeneities in the solid electrolyte interphase (SEI), resulting in nonuniform morphological growth at the anode interface. These heterogeneities lead to severe morphological instability and interfacial degradation, with stable cycling limited to less than 30 h, even at low current densities, highlighting the unresolved challenges of FEC utilization in standard separator conditions. Mesoscale modeling further describes how spatial heterogeneity of the SEI, compounded by localized chemical variations due to FEC, promotes nonuniform Na deposition and drives localized hotspots for nucleation and growth. To further interrogate the role of heterogeneity, we show that incorporating well-controlled anodized aluminum oxide separators facilitates uniform SEI formation. This approach mitigates the transport heterogeneity, leading to a more uniform plating/stripping morphology, and maintains a continuous operation for over 600 h with minimal overpotential fluctuation. This study reveals that long-term Na-metal stability in a carbonate electrolyte is governed not only by additive chemistry but also critically by the spatial and chemical homogeneity of the interface enabled through separator architecture.
Sarkar et al. (Thu,) studied this question.
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