电解质
阳极
法拉第效率
成核
材料科学
金属
化学工程
钠
无机化学
电极
化学稳定性
离子
降级(电信)
容量损失
自行车
碳硼烷
纳米技术
水溶液中的金属离子
氧化还原
金属有机骨架
钠离子电池
作者
Anton W. Tomich,Seoung‐Bum Son,Joseph Quinn,Juyoung Han,Joseph Kubal,Vincent Lavallo,Heonjae Jeong,Christopher S. Johnson
标识
DOI:10.1002/aenm.202505228
摘要
Abstract For anode‐free sodium batteries to achieve practical consideration, highly reversible chemistries require exceptional ≥99.95% coulombic efficiencies that maintain over prolonged cycling periods. To do so, consumption of this severely limited sodium inventory must be restricted while metal nucleation processes that comprise the in situ formed metal anode are improved. Herein, we describe a fluorine‐free carborane electrolyte that satisfies these criteria by emphasizing reductive stability and weakly coordinating anion behavior as design principles. We find this approach promotes the development of a thin, robust SEI chemistry rich in both organic speciation and boron. The electrolyte described herein exhibits ideal metal nucleation behavior on one‐micron thin carbonaceous current collector surfaces and achieves a metal deposition/stripping efficiency near parity for 400 cycles. This novel anode chemistry is introduced to anode‐free full cell configurations where 87% of the initial discharge capacity is retained after 1000 cycles at 2.0 C. Post‐test characterization of deep‐cycled anode‐free cells reveals suppressed capacity fade in these systems is attributed to the chemical stability of the carborane anion.
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