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September 10, 2025Journal of the American Chemical Society39 citations

Depth-Resolved Probing of Native Solid Electrolyte Interphase Formation and Dynamics in Li Metal Batteries by Cryogenic X-Ray Photoelectron Spectroscopy

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SWShenghong WangSLShiwen LiXCXiaoqin Chen

Key Points

  • Depth-resolved analysis shows a graded solid electrolyte interphase in lithium metal batteries, highlighting the role of various components.
  • Cryogenic x-ray photoelectron spectroscopy captured the native solid electrolyte interphase's full composition, revealing distinct differences from dry conditions.
  • The methodology successfully tracks the evolving dynamics of the solid electrolyte interphase during lithium deposition, showing significant thickness variations.
  • This study underscores the potential of advanced spectroscopy techniques to probe complex chemical interfaces in energy storage applications.

Abstract

Solid electrolyte interphase (SEI) critically governs lithium (Li) battery performance. Yet, understanding the native SEI remains challenging due to the lack of techniques capable of depth profiling of the interphase layer under electrolyte conditions (wet-SEI). In this work, cryogenic X-ray photoelectron spectroscopy (cryo-XPS) coupled with argon gas cluster ion beam (GCIB) sputtering was developed to extensively investigate the vitrified wet-SEI of Li metal batteries without chemical damage. First, the combined cryo-XPS and GCIB platform captures the full composition of the native SEI in the presence of electrolyte, which comprises organic polymeric hydrocarbons and inorganic species like LiCx, LiF, LiOx, and Li2CO3. These results are significantly distinct from conventional XPS characterizations of dry-SEI (i.e., SEI without electrolyte) showing a depletion of inorganic species and thus highlight the strength of this hybrid approach in revealing the real motif of the native SEI. Second, a graded SEI architecture has been revealed with electrochemical decomposition products (LiF and Li2CO3) dominating the electrolyte-facing region, and chemically derived species (LiOx and LiCx) accumulating at the electrode-facing region. Lastly, this approach is capable of scrutinizing the dynamic evolution of SEI during Li deposition, unravelling a compositional shift from electrochemical SEI to a graded complex SEI architecture, with a thickness increase from the nanometer- to micrometer-scale. Therefore, depth-resolved cryo-XPS serves as a promising methodology for elucidating the dynamic heterogeneous chemical signatures across evolving solid–liquid interfaces in electrocatalysis and energy storage processes.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68c1cc2e54b1d3bfb60f40f0https://doi.org/10.1021/jacs.5c09519
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