An electrochemically stable homogeneous glassy electrolyte formed at room temperature for all-solid-state sodium batteries

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作者
Xiaowei Chi
Ye Zhang
Fang Hao
Steven Kmiec
Hui Dong
Rong Xu
Kejie Zhao
Qing Ai
Tanguy Terlier
Liang Wang
Lihong Zhao
Liqun Guo
Jun Lou
Huolin L. Xin
Steve W. Martin
Yan Yao
机构
[1] Department of Electrical and Computer Engineering and Texas Center for Superconductivity at the University of Houston,Shanghai Institute of Ceramics
[2] University of Houston,Department of Materials Science & Engineering
[3] Chinese Academy of Sciences,School of Mechanical Engineering
[4] Iowa State University,Department of Materials Science and NanoEngineering
[5] Purdue University,Shared Equipment Authority, SIMS laboratory
[6] Rice University,Department of Physics
[7] Rice University,Department of Physics and Astronomy
[8] Northern Illinois University,Institute of Advanced Structure Technology and School of Materials Science and Engineering
[9] University of California,undefined
[10] Irvine,undefined
[11] Beijing Institute of Technology,undefined
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摘要
All-solid-state sodium batteries (ASSSBs) are promising candidates for grid-scale energy storage. However, there are no commercialized ASSSBs yet, in part due to the lack of a low-cost, simple-to-fabricate solid electrolyte (SE) with electrochemical stability towards Na metal. In this work, we report a family of oxysulfide glass SEs (Na3PS4−xOx, where 0 < x ≤ 0.60) that not only exhibit the highest critical current density among all Na-ion conducting sulfide-based SEs, but also enable high-performance ambient-temperature sodium-sulfur batteries. By forming bridging oxygen units, the Na3PS4−xOx SEs undergo pressure-induced sintering at room temperature, resulting in a fully homogeneous glass structure with robust mechanical properties. Furthermore, the self-passivating solid electrolyte interphase at the Na|SE interface is critical for interface stabilization and reversible Na plating and stripping. The new structural and compositional design strategies presented here provide a new paradigm in the development of safe, low-cost, energy-dense, and long-lifetime ASSSBs.
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