Wang Shuhan, Zeng Ting, Wen Xiaojuan, Xu Haoyang, Fan Fengxia, Wang Xinxiang, Tian Guilei, Liu Sheng, Liu Pengfei, Wang Chuan, Zeng Chenrui, Shu Chaozhu
College of Materials and Chemistry & Chemical Engineering, Chengdu University of Technology, 1#, Dongsanlu, Erxianqiao, Chengdu, Sichuan, 610059, P. R. China.
Small. 2024 Aug;20(31):e2309874. doi: 10.1002/smll.202309874. Epub 2024 Mar 7.
Garnet-type solid-state electrolytes attract abundant attentions due to the broad electrochemical window and remarkable thermal stability while their poor ionic conductivity obstructs their widespread application in all-solid-state batteries. Herein, the enhanced ionic conductivity of garnet-type solid electrolytes is achieved by partially substituting O sites with Cl anions, which effectively reduce Li migration barriers while preserving the highly conductive cubic phase of garnet-type solid-state electrolytes. This substitution not only weakens the anchoring effect of anions on Li to widen the size of Li diffusion channel but also optimizes the occupancy of Li at different sites, resulting in a substantial reduction of the Li migration barrier and a notable improvement in ionic conductivity. Leveraging these advantageous properties, the developed LiLaZrTaO-Cl (LLZTO-0.15Cl) electrolyte demonstrates high Li conductivity of 4.21×10 S cm. When integrated with LiFePO (LFP) cathode and metallic lithium anode, the LLZTO-0.15Cl electrolyte enables the solid-state battery to operate for more than 100 cycles with a high capacity retention of 76.61% and superior Coulombic efficiency of 99.48%. This work shows a new strategy for modulating anionic framework to enhance the conductivity of garnet-type solid-state electrolytes.
石榴石型固态电解质因其宽电化学窗口和出色的热稳定性而备受关注,但其较差的离子电导率阻碍了它们在全固态电池中的广泛应用。在此,通过用Cl阴离子部分取代O位点实现了石榴石型固体电解质离子电导率的提高,这在保留石榴石型固态电解质高导电立方相的同时有效降低了Li迁移势垒。这种取代不仅削弱了阴离子对Li的锚定作用以拓宽Li扩散通道的尺寸,还优化了Li在不同位点的占据情况,从而大幅降低了Li迁移势垒并显著提高了离子电导率。利用这些有利特性,所开发的LiLaZrTaO-Cl(LLZTO-0.15Cl)电解质表现出4.21×10 S cm的高Li电导率。当与LiFePO(LFP)阴极和金属锂阳极集成时,LLZTO-0.15Cl电解质使固态电池能够运行超过100个循环,具有76.61%的高容量保持率和99.48%的优异库仑效率。这项工作展示了一种调节阴离子骨架以提高石榴石型固态电解质电导率的新策略。