Li10Ge(P1–xSbx)2S12 Lithium-Ion Conductors with Enhanced Atmospheric Stability

结构精修 离子电导率 电解质 锂(药物) 离子 法拉第效率 电导率 离子键合 快离子导体 材料科学 硫化物 分析化学(期刊) 化学 物理化学 结晶学 晶体结构 冶金 内分泌学 有机化学 医学 电极
作者
Jianwen Liang,Ning Chen,Xiaona Li,Xia Li,Keegan R. Adair,Junjie Li,Changhong Wang,Chuang Yu,Mohammad Norouzi Banis,Li Zhang,Shangqian Zhao,Shigang Lu,Huan Huang,Ruying Li,Yining Huang,Xueliang Sun
出处
期刊:Chemistry of Materials [American Chemical Society]
卷期号:32 (6): 2664-2672 被引量:189
标识
DOI:10.1021/acs.chemmater.9b04764
摘要

Sulfide solid electrolytes have recently attracted significant interest for use in all-solid-state lithium batteries (ASSLBs) due to their high ionic conductivity. However, one of the main challenges associated with the commercialization of sulfide-based electrolytes is their instability toward air/moisture, which leads to complex processing requirements. Herein, we develop a strategy to not only increase ionic conductivity but also obtain high air stability of the Li10Ge(P1–xSbx)2S12 electrolyte system with soft acid Sb substitution. Theoretical calculations predict the Sb substitution in (Ge,P)S4 tetrahedral sites, which is further confirmed by the X-ray diffraction Rietveld refinement and synchrotron X-ray absorption fine structure analysis. Opened channels and increased unit cell volume are achieved with an appropriate amount of Sb substitution, leading to an ultrahigh ionic conductivity of 17.3 ± 0.9 mS cm–1. The softer acidity of Sb compared to that of P also ensures strong covalent bonding with S in Li10Ge(P1–xSbx)2S12, which improves the air stability of the electrolyte. Moreover, the air-exposed samples exhibit high ionic conductivities of 12.1–15.7 mS cm–1. Bulk-type ASSLBs assembled with either pristine or air-exposed Li10Ge(P1–xSbx)2S12 exhibit high initial Coulombic efficiencies of 92.8 and 91.0%, respectively, with excellent cycling performances of over 110 cycles. The observed variations in the structural parameters and bond strengths provide an effective approach toward designing more ionically conductive and stable solid-state electrolytes.
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