Versatile Molecular Engineering of In Situ Cross-Linked Multifunctional Electrolytes for Long-Lifetime and Safe Semisolid Lithium Metal Batteries

金属锂 原位 材料科学 锂(药物) 电解质 纳米技术 金属 电极 化学 有机化学 冶金 生物 物理化学 内分泌学
作者
Kai Chen,Anjun Hu,Guorui Zhu,Yuanjian Li,Jingyun Jiang,Borui Yang,Ting Li,Kun Li,Jingze Chen,Xu Wang,Zhen Wang,Rui Xu,Wei Yang,Jian Wang,Gang Wu,Jianping Long,Zhi Wei Seh
出处
期刊:ACS Nano [American Chemical Society]
标识
DOI:10.1021/acsnano.5c00990
摘要

The practical application of semisolid lithium metal batteries is impeded by inadequate ionic conductivity, suboptimal oxidation/reduction stability, and safety concerns of the electrolyte. Herein, a versatile molecular engineering strategy is proposed to construct a robust polymer framework for semisolid electrolytes, which creates highly compatible cross-linked networks by the in situ gelation of concentrated succinonitrile-based plastic crystal electrolytes and multifunctional nitrogen- and fluorine-rich monomers. This strategy allows the electrolyte to promote rapid Li-ion transpsort through weak coordination with the polymer segments. Meanwhile, the strong interactions between the polymer matrix and succinonitrile enhance their mutual solubility, reduce the crystallinity of succinonitrile, and establish fast ion-conductive pathways. The resultant electrolyte induces the formation of LiF/Li3N-rich solid electrolyte interphases and achieves uniform lithium deposition behaviors. Moreover, it mitigates fire risks by cothermally decomposing to produce fire-extinguishing gases (CO2 and NH3) and leveraging the nonflammability of succinonitrile. Significant improvements in electrochemical performance have been observed in Li symmetric, Li||LiFePO4, and Li||LiNi0.8Co0.1Mn0.1O2 cells both at room temperature and high temperature (60 °C). As a demonstration model, this molecular engineering strategy has been successfully applied to enhance thermal stability and safety in Li||LiNi0.8Co0.1Mn0.1O2 pouch cells, offering a promising solution for semisolid lithium metal batteries under extreme conditions.
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