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Lithium Insertion Mechanism in Iron-Based Oxyfluorides with Anionic Vacancies Probed by PDF Analysis

  • Damien Dambournet
  • , Karena W. Chapman
  • , Mathieu Duttine
  • , Olaf Borkiewicz
  • , Peter J. Chupas
  • , Henri Groult
  • Sorbonne Université
  • PHENIX
  • Université de Bordeaux
  • United States Department of Energy

Research output: Contribution to journalArticlepeer-review

16 Scopus citations

Abstract

The mechanism of lithium insertion that occurs in an iron oxyfluoride sample with a hexagonal-tungsten-bronze (HTB)-type structure was investigated by the pair distribution function. This study reveals that upon lithiation, the HTB framework collapses to yield disordered rutile and rock salt phases followed by a conversion reaction of the fluoride phase toward lithium fluoride and nanometer-sized metallic iron. The occurrence of anionic vacancies in the pristine framework was shown to strongly impact the electrochemical activity, that is, the reversible capacity scales with the content of anionic vacancies. Similar to FeOF-type electrodes, upon de-lithiation, a disordered rutile phase forms, showing that the anionic chemistry dictates the atomic arrangement of the re-oxidized phase. Finally, it was shown that the nanoscaling and structural rearrangement induced by the conversion reaction allow the in situ formation of new electrode materials with enhanced electrochemical properties. A battery of tests! The insertion of lithium into iron-based oxyfluorides yields a composite electrode made of fluoride and oxide phases, as identified by the pair distribution function method. The resulting material shows enhanced intercalation properties relative to the pristine oxyfluoride phase.

Original languageEnglish
Pages (from-to)443-447
Number of pages5
JournalChemistryOpen
Volume4
Issue number4
DOIs
StatePublished - Aug 1 2015

Keywords

  • anionic partitioning
  • cathode materials
  • ferric fluoride
  • pair distribution function

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