电解质
法拉第效率
化学
三元运算
阴极
锂(药物)
溶剂化
溶剂
化学工程
金属锂
无机化学
电池(电)
过渡金属
金属
离子
星团(航天器)
分解
沸石咪唑盐骨架
乙腈
强电解质
作者
Shuvadip Pradhan,Akash K. Meel,Shubhadeep Pal,Sreeroop Ghosh,Abhik Banerjee,Santosh Mogurampelly,Tharangattu N. Narayanan
摘要
Electrolyte engineering strategies that exploit nonfluorinated solvents at low electrolyte concentrations are crucial for enabling next-generation high-performance and safer batteries, including zero-excess lithium metal batteries (ZELMBs). We demonstrate such a protocol using ether-based solvents, wherein the coordination of Li + by distinct anions within the solvation shell enhances the Li + transference number and stabilizes interfacial passivation. The tendency of solvents to form clusters facilitates Li + desolvation prior to plating, enhancing ZELMB cycling performance to approximately 80%. At a comparatively low concentration (1.4 M) of salts in nonfluorinated solvents, the electrolyte stabilizes ZELMB performance with an average Coulombic efficiency of ∼98%. A cell employing an NMC811 cathode and a Cu current collector can sustain >90 cycles with >50% capacity retention. Spectroscopic and molecular dynamics analyses reveal cooperative solvent–anion clustering that drives the transition from solvent-dominated to mixed ion–solvent Li + coordination, underpinning enhanced transport. This study establishes a pathway for designing low-cost, fluorine-free solvent-based electrolytes for metal batteries of extended cyclability.
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