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Strong anisotropy and its electric tuning for brownmillerite SrCo O2.5 films with different crystal orientations

  • Jinghua Song
  • , Yuansha Chen*
  • , Hongrui Zhang
  • , Furong Han
  • , Jing Zhang
  • , Xiaobing Chen
  • , Hailin Huang
  • , Jine Zhang
  • , Hui Zhang
  • , Xi Yan
  • , Tahira Khan
  • , Shaojin Qi
  • , Zhihuang Yang
  • , Fengxia Hu
  • , Baogen Shen
  • , Jirong Sun
  • *Corresponding author for this work
  • CAS - Institute of Physics
  • University of Chinese Academy of Sciences
  • Chinese Academy of Sciences
  • Songshan Lake Materials Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

Brownmillerite oxides (ABO2.5) with long-range ordering of oxygen vacancies own a distinct superstructure formed by alternately stacked octahedral BO6 and tetrahedral BO4 planes. The one-dimensional oxygen vacancy channels within BO4 layers usually lead to high ionic conductivity of brownmillerite oxides, demonstrating great application potential in solid-oxide fuel cells, the oxygen separation membrane, and catalyzers. Here, high quality brownmillerite-SrCoO2.5 films have been epitaxially grown on differently oriented substrates by pulsed laser deposition. The anisotropic structural and physical properties of (110)- and (111)-oriented SrCoO2.5 films were systematically investigated. We found, unlike the out-of-plane (001)-oriented SrCoO2.5 films, the CoO6 and CoO4 planes would alternately stack along one of the [100] and [010] axes for (110)-oriented films and one of the [100], [010], and [001] axes for (111)-oriented films, forming coexisting crystal domains with different orientations. More importantly, the superstructure of these films could be reversibly tuned by alternately applying an electric field along two orthogonal directions, switching between an ordered and a disordered state. Corresponding to structural anisotropy, strong in-plane electronic anisotropy of the (110)-oriented SrCoO2.5 film was revealed, which was also electrically tunable like the superstructure. This work demonstrates the approaches to modify the ionic conduction channels of brownmillerite oxides, opening avenues towards electrically tunable oxygen separation membrane and catalyzers.

Original languageEnglish
Article number045801
JournalPhysical Review Materials
Volume3
Issue number4
DOIs
StatePublished - 4 Apr 2019
Externally publishedYes

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