电化学
电解质
无机化学
锂(药物)
钝化
材料科学
氧化物
硫化物
电极
化学工程
金属
相(物质)
惰性
氧化铁
氟化物
硫化铁
法拉第效率
离子
碳酸盐
化学
析氧
作者
Ziang Jiang,Shunrui Luo,Pengfei Wang,Jiali Peng,Ming Hao,Fulu Chu,Jie Lei,Paulo Ferreira,Feixiang Wu
标识
DOI:10.1038/s41467-026-72471-z
摘要
Iron trifluoride demonstrates poor performance as a multi-electron conversion positive electrode in conventional ester-based electrolytes, yet exhibits higher capacity retention in ether-based electrolytes. This contrast has long remained unresolved in high-energy-density metal fluoride-lithium batteries. Here, we show that the electrolyte-dependent behavior originates from interfacial anion competition within the cathode-electrolyte interphase. Spectroscopic and electrochemical analyses reveal that anions derived from lithium salts preferentially interact with iron species, governing interfacial conversion pathways and phase evolution. In ether-based electrolytes, lithium sulfide and lithium oxide react with iron to form electrochemically active iron sulfide species, sustaining reversible cycling. In contrast, lithium carbonate formed in ester-based electrolytes leads to inert carbonate-rich iron species, resulting in surface passivation and capacity decay. With prolonged cycling, iron trifluoride gradually evolves into thermodynamically stable iron-based phases, highlighting that interfacial anion chemistry dictates long-term phase evolution and degradation pathways of iron-based fluoride conversion electrodes. Iron fluoride electrodes show contrasting stability in ether- and ester-based electrolytes. Here, the authors reveal that interfacial anion chemistry governs conversion pathways and phase evolution, explaining the origin of stability differences and guiding the design of high-energy lithium batteries.
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