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Li+ Shuttle bus enables safe fast ion transport in solid polymer electrolytes

Hao Chen, Jiawen Huang, Si-Hao Peng, Zhi-Hua Liu, Zhi‐Wei Zeng, P. K. Tang, Bowen Liu, Fu‐Rong Zeng, Yue Wang, Lin Zhang, Haibo Zhao

Revista con revisión por paresUso en el mundo real

En palabras de los autores

Solid polymer electrolytes are important for lithium metal batteries, but their limited Li+ transference efficiency hinders large-scale deployment. Here we report a Li⁺ shuttle bus strategy that immobilizes anions at one-dimensional charged interface, promotes lithium salt dissociation, and guides Li⁺ enrichment. The effect of Coulombic repulsion among densely coordinated Li⁺ species weakens solvation structure for Li+, achieving fast, collective and one-dimensional ion shuttling at the microscopic scale. Consequently, the designed solid polymer electrolyte exhibits a high ionic conductivity of 0.92 × 10−3 S cm−1 at 28 °C. Li | |LiFePO4 cells operate nearly 5000 cycles at 5 C and maintain 77% capacity after 900 cycles at −40 °C. Li | |LiNi0.8Co0.1Mn0.1O2 pouch cell further realizes high specific energy (508 Wh kg−1, 200 cycles, 95.2% retention). This work establishes a Li⁺ shuttle-bus strategy for constructing solid polymer electrolytes with fast-charging capability and wide-temperature adaptability, offering findings into the design of solid-state lithium metal batteries. Solid polymer electrolytes suffer from sluggish Li⁺ transport. Here, authors develop a shuttle-bus strategy that weakens Li⁺ solvation through Coulombic repulsion, enabling collective ion transport and Li | |NCM811 pouch cells with 508 Wh kg⁻¹ and 95.2% capacity retention after 200 cycles.

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Apareció: sábado, 26 de septiembre. Nature Communications. Revista con revisión por pares.

DOI: 10.1038/s41467-026-78041-7