溶剂化
电解质
材料科学
锂(药物)
相间
金属锂
电化学
化学工程
金属
溶剂
分子
阳离子聚合
盐(化学)
锚固
无机化学
纳米技术
隐溶剂化
溶剂化壳
电化学电池
工作(物理)
电化学电位
电池(电)
小袋
作者
Hongwei Yu,Tianle Zheng,J. Ge,Xu‐Feng Zang,Gupei Ding,Yanming Cui,Zoran Mandić,Kun Zheng,Xing Xin,Yongyao Xia,Mingjiong Zhou
摘要
ABSTRACT Lithium metal batteries (LMBs) are regarded as promising candidates for next‐generation high‐energy‐density storage systems. However, their practical application is severely hindered by rapid performance degradation under high‐voltage and lean‐electrolyte conditions. Constructing an anion‐enriched solvation structure to generate an inorganic‐rich solid electrolyte interphase (SEI) is critical for ensuring the stable operation of lithium metal batteries. Herein, a novel anion‐enrichment strategy is proposed by introducing a rigid cationic species (F‐TEDA + ) as a molecular anchoring additive to design a solvent‐anchored electrolyte (SAE). F‐TEDA + anchors solvent molecules via strong ion–dipole interactions, enabling the formation of an anion‐enriched solvation structure comparable to that of high‐concentration electrolytes, even at an ultralow additive dosage and conventional salt concentration. Notably, the rigid molecular framework of F‐TEDA + endows it with excellent electrochemical stability, allowing persistent regulation of the solvation structure during long‐term cycling. As a result, a 14.2 Ah Li‖Ni95 pouch cell reaches 615.3 Wh kg −1 and retains 91.4% capacity after 70 cycles at 4.5 V. This work proposes a nonconsumable solvation regulation strategy, providing a new avenue for the development of high‐voltage, high‐energy‐density lithium metal batteries.
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