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用于低温锂硫电池的动态迁移-牵引聚合物电解质设计策略

Dynamic Migration-Pulling Polymer Electrolyte Design Strategy for Low-Temperature Lithium-Sulfur Batteries.

作者信息

Song Wenkai, Li Borui, Qu Yunpeng, Jiang Wanyuan, Pei Mengfan, Hu Naiwen, Zhuo Shuo, Su Chang, Jin Xin, Mao Runyue, Liu Dongming, Jian Xigao, Hu Fangyuan

机构信息

School of Materials Science and Engineering, State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, Technology Innovation Center of High Performance Resin Materials (Liaoning Province), Dalian University of Technology, Dalian, 116024, China.

State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, School of Chemical Engineering, Technology Innovation Center of High Performance Resin Materials (Liaoning Province), Dalian University of Technology, Dalian, 116024, China.

出版信息

Angew Chem Int Ed Engl. 2025 Jul;64(29):e202505095. doi: 10.1002/anie.202505095. Epub 2025 May 27.

Abstract

Quasi-solid-state lithium-sulfur batteries exhibit significant promise as safe, high-energy electrochemical storage technology, yet their performance remains constrained by polysulfide accumulation and exacerbated shuttle effects due to sluggish redox kinetics and inefficient charge transport. Here, a dynamic migration-pulling strategy is proposed to accelerate polysulfide redox kinetics by dynamically restructuring the solvated structure of Li, which is validated on a GPE incorporating boronic ester dynamic covalent bonds and polar side chains (BE-GPE). Theoretical calculations and experiments revealed that the desolvation barrier for Li is significantly reduced, while the ligand groups were pulled out from the solvated shell assisted by the migration of dynamic covalent bonds. Rapid charge transfer kinetics are attainable via designed electrolyte. Consequently, BE-GPE based lithium-sulfur batteries delivered high reversible capacity of 1446 mAh g at 0.1 C and long-term cycling stability with an average capacity decay of 0.04% during 1000 cycles at 0.5 C. The initial capacity at 0.5 C is up to 920 mAh g and remains stable for 200 cycles at 0 °C. Successfully realized the energy storage of quasi-solid-state Li-S batteries under low-temperature conditions.

摘要

准固态锂硫电池作为一种安全、高能量的电化学储能技术展现出了巨大的潜力,然而其性能仍受限于多硫化物的积累以及由于氧化还原动力学迟缓与电荷传输效率低下而加剧的穿梭效应。在此,提出了一种动态迁移-拉动策略,通过动态重构锂的溶剂化结构来加速多硫化物的氧化还原动力学,这在一种包含硼酸酯动态共价键和极性侧链的凝胶聚合物电解质(BE-GPE)上得到了验证。理论计算和实验表明,锂的去溶剂化能垒显著降低,同时在动态共价键迁移的辅助下,配体基团从溶剂化壳层中被拉出。通过设计的电解质可实现快速的电荷转移动力学。因此,基于BE-GPE的锂硫电池在0.1 C时具有1446 mAh g的高可逆容量以及长期循环稳定性,在0.5 C下1000次循环期间平均容量衰减为0.04%。在0.5 C时的初始容量高达920 mAh g,并且在0°C下200次循环保持稳定。成功实现了准固态锂硫电池在低温条件下的储能。

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