AUTHOR=Hill Ryan C. , Gross Martha S. , Percival Stephen J. , Peretti Amanda S. , Small Leo J. , Spoerke Erik D. , Cheng Yang-Tse TITLE=Molten sodium batteries: advances in chemistries, electrolytes, and interfaces JOURNAL=Frontiers in Batteries and Electrochemistry VOLUME=3 YEAR=2024 URL=https://www.frontiersin.org/journals/batteries-and-electrochemistry/articles/10.3389/fbael.2024.1369305 DOI=10.3389/fbael.2024.1369305 ISSN=2813-4974 ABSTRACT=
The need for clean, renewable energy has driven the expansion of renewable energy generators, such as wind and solar. However, to achieve a robust and responsive electrical grid based on such inherently intermittent renewable energy sources, grid-scale energy storage is essential. The unmet need for this critical component has motivated extensive grid-scale battery research, especially exploring chemistries “beyond Li-ion”. Among others, molten sodium (Na) batteries, which date back to the 1960s with Na-S, have seen a strong revival, owing mostly to raw material abundance and the excellent electrochemical properties of Na metal. Recently, many groups have demonstrated important advances in battery chemistries, electrolytes, and interfaces to lower material and operating costs, enhance cyclability, and understand key mechanisms that drive failure in molten Na batteries. For widespread implementation of molten Na batteries, though, further optimization, cost reduction, and mechanistic insight is necessary. In this light, this work provides a brief history of mature molten Na technologies, a comprehensive review of recent progress, and explores possibilities for future advancements.