Deng Hongjie, He Fa, Liu Tongli, Ye Meng, Wan Fang, Guo Xiaodong
School of Chemical Engineering, Sichuan University, Chengdu, 610065, People's Republic of China.
Nanotechnology. 2024 Feb 23;35(19). doi: 10.1088/1361-6528/ad27ad.
Composite solid electrolytes combining the advantages of inorganic and polymer electrolytes are considered as one of the promising candidates for solid-state lithium metal batteries. Compared with ceramic-in-polymer electrolyte, polymer-in-ceramic electrolyte displays excellent mechanical strength to inhibit lithium dendrite. However, polymer-in-ceramic electrolyte faces the challenges of lack of flexibility and severely blocked Litransport. In this study, we prepared polymer-in-ceramic film utilizing ultra-high molecular weight polymers and ceramic particles to combine flexibility and mechanical strength. Meanwhile, the ionic conductivity of polymer-in-ceramic electrolytes was improved by adding excess lithium salt in polymer matrix to form polymer-in-salt structure. The obtained film shows high stiffness (10.5 MPa), acceptable ionic conductivity (0.18 mS cm) and high flexibility. As a result, the corresponding lithium symmetric cell stably cycles over 800 h and the corresponding LiFePOcell provides a discharge capacity of 147.7 mAh gat 0.1 C without obvious capacity decay after 145 cycles.
结合无机电解质和聚合物电解质优点的复合固态电解质被认为是固态锂金属电池最有前景的候选材料之一。与陶瓷-聚合物电解质相比,聚合物-陶瓷电解质具有优异的机械强度以抑制锂枝晶。然而,聚合物-陶瓷电解质面临缺乏柔韧性和锂离子传输严重受阻的挑战。在本研究中,我们利用超高分子量聚合物和陶瓷颗粒制备了聚合物-陶瓷薄膜,以兼具柔韧性和机械强度。同时,通过在聚合物基体中添加过量锂盐形成盐包聚合物结构,提高了聚合物-陶瓷电解质的离子电导率。所得薄膜具有高刚度(10.5 MPa)、可接受的离子电导率(0.18 mS/cm)和高柔韧性。结果,相应的锂对称电池稳定循环超过800小时,相应的磷酸铁锂电池在0.1 C下提供147.7 mAh/g的放电容量,在145次循环后无明显容量衰减。