Standardization of post-mortem photoelectron spectroscopy studies of battery interphases: from cell assembly to data analysisChalmers Univ Technol, Dept Phys, SE-412 96 Gothenburg, Sweden.;SEEL Swedish Elect Transport Lab, Save Flygplatsvag 27, S-42373 Gothenburg, Sweden..
Univ Grenoble Alpes, CEA, CNRS, Grenoble INP,IRIG,SyMMES, 17 Ave Martyrs, F-38000 Grenoble, France..
Karlsruhe Inst Technol KIT, Inst Phys Chem IPC, Fritz Haber Weg 2, D-76131 Karlsruhe, Germany..
Karlsruhe Inst Technol KIT, Inst Phys Chem IPC, Fritz Haber Weg 2, D-76131 Karlsruhe, Germany..
Synchrotron SOLEIL, F-91190 St Aubin, France..
ICMAB CSIC, Inst Ciencia Mat Barcelona, Campus UAB, Bellaterra 08193, Spain..
ICMAB CSIC, Inst Ciencia Mat Barcelona, Campus UAB, Bellaterra 08193, Spain..
Basque Res & Technol Alliance BRTA, Ctr Cooperat Res Alternat Energies C EnergiGUNE, Vitoria 01510, Spain..
Basque Res & Technol Alliance BRTA, CIDETEC, Mendaro, Spain..
Forschungszentrum Munster, Helmholtz Inst Munster IMD4, Corrensstr 48, D-48149 Munster, Germany..
Forschungszentrum Munster, Helmholtz Inst Munster IMD4, Corrensstr 48, D-48149 Munster, Germany..
Forschungszentrum Munster, Helmholtz Inst Munster IMD4, Corrensstr 48, D-48149 Munster, Germany..
CEA LITEN DTNM, F-38054 Grenoble, France..
CEA LITEN DTNM, F-38054 Grenoble, France..
CEA LITEN DTNM, F-38054 Grenoble, France..
Synchrotron SOLEIL, F-91190 St Aubin, France..
Univ Grenoble Alpes, CEA, CNRS, Grenoble INP,IRIG,SyMMES, 17 Ave Martyrs, F-38000 Grenoble, France..
Univ Grenoble Alpes, F-38000 Grenoble, France.;CEA LITEN DTNM, F-38054 Grenoble, France.;Karlsruhe Inst Technol KIT, Inst Appl Mat IAM, D-76344 Eggenstein Leopoldshafen, Germany..
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2026 (English)In: Journal of Energy Storage, ISSN 2352-152X, E-ISSN 2352-1538, Vol. 170, article id 122820Article in journal (Refereed) Published
Abstract [en]
Understanding the chemical structure of the solid electrolyte interphase that forms and evolves during lithium-ion battery cycling is critical for advancing battery technology. This complex task often requires the use of postmortem protocols to extract the electrodes in controlled states of charge and prepare them for further characterization and analysis. Over decades of research and optimization, the scientific community has established and shared post-mortem workflow protocols tailored to specific techniques. However, numerous sources of artifacts can disturb this workflow, introducing experimental uncertainties at various stages, from electrode manufacturing to data interpretation. Here we present the results of a round-robin inter-laboratory study using post-mortem X-ray photoemission spectroscopy to characterize the solid electrolyte interphase formed on graphite electrode after cycling in two different electrolytes. Several leading European research teams, expert in battery manufacturing and characterization by X-ray photoemission spectroscopy, participated in a meticulously designed post-mortem workflow. The goal was to identify the sources of consistency and disparity in the results and their impact on the scientific conclusions. Moreover, human-induced bias and errors were quantified throughout key steps, from cell assembly to photoemission core level peak fitting and interpretation. Based on our findings, we offer key recommendations for identifying and minimizing sources of artifacts in the analysis of the solid electrolyte interphase chemical composition. Effectively addressing these challenges is essential for improving both the performance and longevity of batteries.
Place, publisher, year, edition, pages
Elsevier, 2026. Vol. 170, article id 122820
Keywords [en]
Post-mortem, XPS, SEI, Round-robin
National Category
Materials Chemistry
Identifiers
URN: urn:nbn:se:uu:diva-592339DOI: 10.1016/j.est.2026.122820ISI: 001785362200001Scopus ID: 2-s2.0-105040634138OAI: oai:DiVA.org:uu-592339DiVA, id: diva2:2081291
Funder
EU, Horizon 2020, 957189StandUp2026-06-292026-06-292026-06-29Bibliographically approved