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Ion Intercalation in Lanthanum Strontium Ferrite for Aqueous Electrochemical Energy Storage Devices

  • Yunqing Tang
  • , Francesco Chiabrera*
  • , Alex Morata
  • , Andrea Cavallaro
  • , Maciej O. Liedke
  • , Hemesh Avireddy
  • , Mar Maller
  • , Maik Butterling
  • , Andreas Wagner
  • , Michel Stchakovsky
  • , Federico Baiutti
  • , Ainara Aguadero
  • , Albert Tarancón*
  • *Corresponding author for this work
  • Catalonia Institute for Energy Research
  • Imperial College London
  • Helmholtz-Zentrum Dresden-Rossendorf
  • HORIBA Scientific

Research output: Contribution to journalJournal articleResearchpeer-review

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Abstract

Ion intercalation of perovskite oxides in liquid electrolytes is a very promising method for controlling their functional properties while storing charge, which opens up its potential application in different energy and information technologies. Although the role of defect chemistry in oxygen intercalation in a gaseous environment is well established, the mechanism of ion intercalation in liquid electrolytes at room temperature is poorly understood. In this study, the defect chemistry during ion intercalation of La0.5Sr0.5FeO3-δ thin films in alkaline electrolytes is studied. Oxygen and proton intercalation into the La1-xSrxFeO3-δ perovskite structure is observed at moderate electrochemical potentials (0.5 to -0.4 V), giving rise to a change in the oxidation state of Fe (as a charge compensation mechanism). The variation of the concentration of holes as a function of the intercalation potential is characterized by in situ ellipsometry, and the concentration of electron holes is indirectly quantified for different electrochemical potentials. Finally, a dilute defect chemistry model that describes the variation of defect species during ionic intercalation is developed.
Original languageEnglish
JournalACS Applied Materials and Interfaces
Volume14
Issue number16
Pages (from-to)18486-18497
Number of pages12
ISSN1944-8244
DOIs
Publication statusPublished - 2022

Keywords

  • Defect chemistry
  • Thin films
  • Ion intercalation
  • In situ
  • Spectroscopic ellipsometry
  • Liquid electrolyte

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