Situ Polymerized Solid Polymer Electrolytes Enabli

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发布时间:2025-07-28 20:33

Molecular Design for In-Situ Polymerized Solid Polymer Electrolytes Enabling Stable Cycling of Lithium Metal Batteries
Advanced Energy Materials ( IF 26 ) Pub Date : 2024-03-05 , DOI: 10.1002/aenm.202400428
Hao Peng 1 , Tairen Long 1 , Jun Peng 1 , Hui Chen 1 , Lifei Ji 1 , Hui Sun 2 , Ling Huang 1 , Shi‐Gang Sun 1

Affiliation  

State Key Laboratory of Physical Chemistry of Solid Surfaces College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 China

State Key Laboratory of Heavy Oil Processing Beijing Key Laboratory of Biogas Upgrading Utilization College of New Energy and Materials China University of Petroleum‐Beijing Beijing 102249 China

 

The practical application of polymer electrolytes is hindered due to the low ionic conductivity and the interfacial instability between the electrodes. Herein, a strategy for designing solid polymer electrolytes is developed that facilitates the rapid lithium-ion migration through weak coordination with polymer chain segments, as well as the fast ion channel transport of oligomers. Moreover, the in situ-produced solid polymer electrolyte (PFVS) can form stable LiF-rich interfaces with both the lithium metal anode and different cathodes. When the PFVS is applied in Li-metal batteries, excellent properties are achieved at room temperature. A Li||Li symmetric cell can be stably cycled for 4000 h at a current density of 0.1 mA cm−1, a Li||LiFePO4 full cell can maintain capacity retention as high as still 94.4% after 600 cycles at 1 C, and a Li||NCM811 full cell can retain 80% capacity after 180 cycles at 1 C. A 2.6 Ah Graphite|PFVS|NCM90 pouch cell is made for demonstrating the practical application potential, and it can be also stably cycled. The developed strategy provides a promising path for designing solid polymer electrolytes that can effectively extend the lifespan of Li metal batteries.

中文翻译:


原位聚合固体聚合物电解质的分子设计使锂金属电池稳定循环



由于离子电导率低和电极之间的界面不稳定性,聚合物电解质的实际应用受到阻碍。在此,开发了一种设计固体聚合物电解质的策略,该策略通过与聚合物链段的弱配位促进锂离子的快速迁移,以及低聚物的快速离子通道传输。此外,原位生产的固体聚合物电解质(PFVS)可以与锂金属阳极和不同的阴极形成稳定的富含LiF的界面。当PFVS应用于锂金属电池时,在室温下表现出优异的性能。 Li||Li对称电池可在0.1 mA cm电流密度下稳定循环4000小时 −1 ,Li||LiFePO 4 全电池可保持较高的容量保持率在 1 C 下循环 600 次后容量仍为 94.4%,Li||NCM811 全电池在 1 C 下循环 180 次后仍保留 80% 的容量。制作了 2.6 Ah 石墨|PFVS|NCM90 软包电池以展示实际应用潜力,并且可以稳定循环。该策略为设计可有效延长锂金属电池寿命的固体聚合物电解质提供了一条有前途的途径。

更新日期:2024-03-05