4.6 Article

Room-Temperature Electrochemical Fluoride (De)insertion into CsMnFeF6

Journal

ACS ENERGY LETTERS
Volume 7, Issue 7, Pages 2340-2348

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsenergylett.2c01324

Keywords

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Funding

  1. Center for Synthetic Control Across Length -scales for Advancing Rechargeables (SCALAR), Energy Frontier Research Center - U.S. Department of Energy, Office of Science, Basic Energy Sciences [DE-SC0019381]
  2. National Science Foundation Graduate Research Fellowship Program [DGE-1842487, DGE-2034835]
  3. Jet Propulsion Laboratory, California Institute of Technology - National Aeronautics and Space Administration
  4. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-AC02-06CH11357, DE-AC02-76SF00515]

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We report on the reversible electrochemical (de)fluorination of CsMnFeF6 at room temperature using a liquid electrolyte. The study found that mechanochemical CsMnFeF6 can (de)insert fluoride ions reversibly for multiple cycles, and the material's conductivity is enhanced with increasing cycle numbers.
ABSTRACT: We report on the reversible, electrochemical (de)fluorination of CsMnFeF6 at room temperature using a liquid electrolyte. CsMnFeF6 was synthesized via three methods (hydrothermal, ceramic, and mechanochemical), each of which yields products in a defect pyrochlore structure with varying particle sizes and phase purities. After three galvanostatic cycles, approximately one fluoride ion can be reversibly (de)inserted into mechanochemical CsMnFeF6 for multiple cycles. Ex situ X-ray absorption spectroscopy confirmed that both Mn2+ and Fe3+ are redox active. The cell impedance decreases after one cycle, suggesting that the formation of fluoride vacancies in early cycles generates mixed-valent Fe and enhances the material's conductivity. Ex situ synchrotron diffraction revealed subtle expansion and contraction of the CsMnFeF6 cubic lattice on insertion and removal, respectively, during the first two cycles. New reflections intensify in the ex situ diffraction patterns from cycle 3, corresponding to a topotactic transformation of CsMnFeF6 from the pyrochlore structure into an orthorhombic polytype that continues cycling fluoride ions reversibly.

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