Wang Shi, Xiao Shijun, Li Shuanghan, Liu Chao, Cai Henan, Sun Wenqing, Huang Zhen-Dong, Lai Wen-Yong
State Key Laboratory of Organic Electronics and Information Displays (SKLOEID), Institute of Advanced Materials (IAM), School of Chemistry and Life Sciences, Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing, 210023, China.
Angew Chem Int Ed Engl. 2024 Dec 20;63(52):e202412434. doi: 10.1002/anie.202412434. Epub 2024 Oct 18.
The practical application of solid-state polymer lithium-metal batteries (LMBs) is plagued by the inferior ionic conductivity of the applied polymer electrolytes (PEs), which is caused by the coupling of ion transport with the motion of polymer segments. Here, solvated molecules based on ionic liquid and lithium salt with strong Li-solvent interaction are inserted into an elaborately engineered perfluoropolymer electrolyte via ionic dipole interaction, extensively facilitating Li transport and improving mechanical properties. The intensified formation of solvation structures of contact ion pairs and ionic aggregates, as well as the strong electron-withdrawal properties of the F atoms in perfluoropolymers, give the PE high electrochemical stability and excellent interfacial stability. As a result, Li||Li symmetric cells demonstrate a lifetime of 2500 h and an exceptionally high critical current density above 2.3 mA cm, Li||LiFePO batteries exhibit consistent cycling for 550 cycles at 10 C, and Li||uncoated LiNiCoMnO cells achieve 1000 cycles at 0.5 C with an average Coulombic efficiency of 98.45 %, one of the best results reported to date based on PEs. Our discovery sheds fresh light on the targeted synergistic regulation of the electro-chemo-mechanical properties of PEs to extend the cycle life of LMBs.
固态聚合物锂金属电池(LMBs)的实际应用受到所用聚合物电解质(PEs)离子电导率较低的困扰,这是由离子传输与聚合物链段运动的耦合所导致的。在此,基于离子液体和锂盐且具有强Li-溶剂相互作用的溶剂化分子通过离子偶极相互作用插入精心设计的全氟聚合物电解质中,极大地促进了Li传输并改善了机械性能。接触离子对和离子聚集体溶剂化结构的强化形成,以及全氟聚合物中F原子的强吸电子性质,赋予了该PE高电化学稳定性和优异的界面稳定性。结果,Li||Li对称电池展现出2500 h的寿命以及高于2.3 mA cm的极高临界电流密度,Li||LiFePO电池在10 C下能持续循环550次,Li||未涂覆的LiNiCoMnO电池在0.5 C下实现1000次循环,平均库仑效率为98.45%,这是基于PEs报道的迄今为止最佳结果之一。我们的发现为有针对性地协同调控PEs的电化学-化学-机械性能以延长LMBs的循环寿命提供了新的思路。