Depth-profiling metal-oxygen hybridization and orbital polarization in isovalent perovskite oxide heterostructures

ORAL

Abstract

Heterostructures of complex oxides have been successfully deployed to realize new electronic properties, with much of this work motivated by interfacial charge transfer effects that change the local charge density. Here, we synthesized superlattices of the isovalent perovskite oxides SrFeO3 and CaFeO3 using molecular beam epitaxy to investigate structural-induced changes in the orbital character of carriers across oxide interfaces while retaining the same nominal charge density. Using resonant x-ray reflectivity at the oxygen K-edge, we demonstrate that the Fe-O hybridization in CaFeO3 and SrFeO3 differs and is additionally modified at the interface. Further, using linearly polarized photons we find that the reflectivity at the Fe L-edge is polarization-dependent, which is attributed to strain-induced orbital polarization in the Fe 3d electron orbitals. By modeling the resonant reflectivity, we correlate changes in the Fe orbital polarization with changes in the Fe-O hybridization across the SrFeO3-CaFeO3 interface and reveal the presence of a hybridization superstructure.

*P.C.R. and S.J.M. were supported by the Army Research Office, grant number W911NF-15-1-0133.

Presenters

  • Paul Rogge

    • Department of Materials Science and Engineering, Drexel University

Authors

  • Paul Rogge

    • Department of Materials Science and Engineering, Drexel University
  • Padraic Shafer

    • Advanced Light Source, Lawrence Berkeley National Laboratory
    • Lawrence Berkeley National Laboratory
    • Advanced Light Source
  • Gilberto F L Fabbris

    • Advanced Photon Source, Argonne National Laboratory
  • Wen Hu

    • NSLS-II, Brookhaven National Laboratory
    • Brookhaven National Laboratory
  • Elke Arenholz

    • Advanced Light Source, Lawrence Berkeley National Laboratory
    • Lawrence Berkeley National Laboratory
    • Advanced Light Source
  • Mark Dean

    • Department of Condensed Matter Physics and Materials Science, Brookhaven National Laboratory
    • Department of Condensed Matter Physics and Materials Science, Upton, New York 11973, USA, Brookhaven National Laboratory
    • BNL
    • Brookhaven National Laboratory
    • Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory
  • Steven J May

    • Department of Materials Science and Engineering, Drexel University