4.8 Article

In-situ visualization of the space-charge-layer effect on interfacial lithium-ion transport in all-solid-state batteries

期刊

NATURE COMMUNICATIONS
卷 11, 期 1, 页码 -

出版社

NATURE RESEARCH
DOI: 10.1038/s41467-020-19726-5

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资金

  1. National Key R&D Program of China [2018YFB0104300]
  2. National Natural Science Foundation of China [21975274, U1706229, 11604241, 51971157, 21603161, 61705115, 11902144, 51761165012]
  3. Strategic Priority Research Program of the Chinese Academy of Sciences [XDA22010600]
  4. National Natural Science Foundation for Distinguished Young Scholars of China [51625204]
  5. Youth Innovation Promotion Association of CAS [2016193]
  6. Key Research and Development Plan of Shandong Province, China [2018GGX104016]
  7. Tianjin Science Fund for Distinguished Young Scholars [19JCJQJC61800]
  8. Tianjin Municipal Science and Technology Commission [19JCQNJC15100]
  9. National Program for Thousand Young Talents of China
  10. DICP QIBEBT Fund [DICP and QIBEBT UN201707]
  11. QIBEBT [ZZBS201808]
  12. Young Elite Scientists Sponsorship Program by Tianjin

向作者/读者索取更多资源

The space charge layer (SCL) is generally considered one of the origins of the sluggish interfacial lithium-ion transport in all-solid-state lithium-ion batteries (ASSLIBs). However, in-situ visualization of the SCL effect on the interfacial lithium-ion transport in sulfide-based ASSLIBs is still a great challenge. Here, we directly observe the electrode/electrolyte interface lithium-ion accumulation resulting from the SCL by investigating the net-charge-density distribution across the high-voltage LiCoO2/argyrodite Li6PS5Cl interface using the in-situ differential phase contrast scanning transmission electron microscopy (DPC-STEM) technique. Moreover, we further demonstrate a built-in electric field and chemical potential coupling strategy to reduce the SCL formation and boost lithium-ion transport across the electrode/electrolyte interface by the in-situ DPC-STEM technique and finite element method simulations. Our findings will strikingly advance the fundamental scientific understanding of the SCL mechanism in ASSLIBs and shed light on rational electrode/electrolyte interface design for high-rate performance ASSLIBs. Understanding the effect of the space charge layer (SCL) in all-solid-state lithium-ion batteries is challenging due to lack of direct experimental observations. Here the authors visualize the SCL using an in-situ DPC-STEM imaging technique, based on which they further introduce a built-in electric field to suppress its formation.

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