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受海星启发的兼具平衡刚性和柔韧性的固态锂离子导电膜用于超稳定锂金属电池

Starfish-Inspired Solid-State Li-ion Conductive Membrane with Balanced Rigidity and Flexibility for Ultrastable Lithium Metal Batteries.

作者信息

Liu Liequan, Zhu Lingfeng, Wang Youliang, Guan Xinwei, Zhang Zhenfang, Li Hui, Wang Fan, Zhang Hai, Zhang Ze, Yang Zhenyu, Ma Tianyi

机构信息

School of Biological and Chemical Engineering, Zhejiang University of Science and Technology, Hangzhou, 310023, China.

School of Chemistry and Chemical Engineering, Nanchang University, Nanchang, 330031, China.

出版信息

Angew Chem Int Ed Engl. 2025 Feb 10;64(7):e202420001. doi: 10.1002/anie.202420001. Epub 2024 Dec 17.

Abstract

The performance of solid-state lithium-metal batteries (SSLMB) is often constrained by the low ionic conductivity, narrow electrochemical window, and insufficient mechanical strength of polyethylene oxide (PEO)-based electrolytes. Inspired by the soft-outside, rigid-inside structure of starfish, we designed multifunctional "starfish-type" composite polymer electrolytes (CPEs) using electrospinning technology. These CPEs feature a three-dimensional rigid skeleton network composed of polyacrylonitrile/metal-organic frameworks/ionic liquids (PAN/MOFs/ILs), creating continuous and efficient Li transport channels: MOFs impart rigidity, PEO acts as a cushioning outer layer to enhance interfacial compatibility, and ILs reduce interfacial resistance. The resulting CPEs exhibited excellent ionic conductivity (4.37×10 S cm), a wide electrochemical window (5.34 V), uniform lithium-ion flux, and a high transference number (0.69). Leveraging these synergistic advantages, the Li/CPEs/Li symmetric cell demonstrated outstanding dendrite suppression for over 1300 hours, and the LiFePO/CPEs/Li cell retained 90.1 % capacity after 2100 cycles at 1.0 C, which is the best performance reported for SSLMB with MOF/PEO. The formation of multi-component solid-electrolyte interphase and its role in stabilizing lithium metal cycling were systematically elucidated through theoretical simulations and spectroscopic analysis. This nature-inspired design provides a promising strategy for the development of stable solid-state electrolytes with extended lifespans.

摘要

固态锂金属电池(SSLMB)的性能常常受到基于聚环氧乙烷(PEO)的电解质离子电导率低、电化学窗口窄以及机械强度不足的限制。受海星软外层、硬内层结构的启发,我们利用静电纺丝技术设计了多功能“海星型”复合聚合物电解质(CPE)。这些CPE具有由聚丙烯腈/金属有机框架/离子液体(PAN/MOFs/ILs)组成的三维刚性骨架网络,形成连续且高效的锂传输通道:MOFs赋予刚性,PEO作为缓冲外层以增强界面相容性,ILs降低界面电阻。所得CPE表现出优异的离子电导率(4.37×10 S cm)、宽电化学窗口(5.34 V)、均匀的锂离子通量以及高迁移数(0.69)。利用这些协同优势,Li/CPEs/Li对称电池在超过1300小时内表现出出色的枝晶抑制能力,LiFePO/CPEs/Li电池在1.0 C下循环2100次后仍保留90.1%的容量,这是具有MOF/PEO的SSLMB所报道的最佳性能。通过理论模拟和光谱分析系统地阐明了多组分固体电解质界面的形成及其在稳定锂金属循环中的作用。这种受自然启发的设计为开发具有更长寿命的稳定固态电解质提供了一种有前景的策略。

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