电解质
电化学
化学工程
材料科学
离子电导率
离子液体
聚合
电化学窗口
聚合物
原位聚合
钝化
储能
纳米技术
电导率
电极
金属
锂(药物)
分子
离子键合
无机化学
碳酸乙烯酯
快离子导体
化学稳定性
金属有机骨架
超级电容器
碳酸二甲酯
水解
电化学能量转换
碳酸丙烯酯
电化学电位
作者
Chengliang Wang,Le Chang,Jianjiang He,Wei Zhao,Yingxia Zong,Jianwei Zhao,Jingjiang Sun,Qingfu Wang
标识
DOI:10.1021/acssuschemeng.5c07566
摘要
The development of all-solid-state lithium metal batteries (LMBs) demands solid polymer electrolytes (SPEs) that harmonize high ionic conductivity, electrochemical stability, and environmental sustainability. Herein, we present a molecularly engineered polycarbonate-based solid electrolyte (PCE) network synthesized via in situ ring-opening polymerization (ROP), featuring a unique cross-linked network structure of alternating carbonate-ether chemical bonds. This “rigid-flexible” architecture effectively utilizes the characteristic hierarchical structures of polymers, establishing continuous Li+ conduction pathways while suppressing crystallization. The carbonate groups enhance Li+ dissociation through weak coordination interactions, whereas the ether pendants facilitate rapid ion transport, endowing PCEs with an exceptional room-temperature ionic conductivity of 1.37 × 10–4 S cm–1 (30 °C) and an ultrawide electrochemical stability window up to 5.9 V vs Li+/Li. Furthermore, the cross-linked framework ensures mechanical robustness and dendrite suppression, enabling stable Li plating/stripping for over 5500 h. The assembled LFP/PCE-3/Li cell delivers remarkable cycling stability, maintaining a capacity retention rate of 85.8% after 1200 cycles. The cycling performance of LCO/PCE-3/Li and NCM622/PCE-3/Li cells demonstrates the potential applicability of PCE for sustainable, high-energy-density energy storage systems. Notably, the PCEs exhibit full degradation into nontoxic small molecules within 35 days under ambient conditions via hydrolysis of the carbonate backbone, addressing critical environmental challenges.
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