电解质
无定形固体
化学
离子电导率
延展性(地球科学)
堆栈(抽象数据类型)
电导率
离子键合
模数
化学物理
格子(音乐)
弹性模量
复合材料
高压
路径(计算)
化学工程
体积模量
晶体缺陷
快离子导体
纳米技术
蠕动
杨氏模量
材料性能
还原(数学)
作者
Xudong Chen,Wuliang Feng,Zhehan Zou,Li Shen,Dexiang Gao,樱珈 陈,Kaixin Ren,Yao Liu,Zhenming Xu,Xiaoli Dong,Yonggang Wang,Fei Wang,Yongyao Xia
摘要
Abstract All solid-state batteries (ASSBs) have attracted widespread attention due to their high safety, yet their development remains constrained by mechanical failure. This limitation essentially stems from the intrinsically low ductility of electrolytes, which arises from their high crystallinity. Herein, we propose a defect-modulated fast-freezing approach to achieve the crystalline-to-amorphous transformation. Quantitative defects are introduced into the pristine lattice to reduce the inherent framework stability, followed by the freezing of its high-temperature state to achieve a fully amorphous structure. The resulting amorphized Li3ErCl6 (a-LEC) exhibits a polymer-like low Young’s modulus of 1.9 GPa. Meanwhile, the defect-modulated fast-freezing approach increases the ionic conductivity of the electrolyte from 0.21 to 2.32 mS/cm. Using this a-LEC, ASSBs exhibit a capacity decay of only 0.026% per cycle over 1000 cycles, even at a quasi-zero stack pressure of 1 MPa. This new amorphization strategy paves a promising path toward stable ASSBs with robust and facile interphase.
科研通智能强力驱动
Strongly Powered by AbleSci AI