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Scattering Interference Signature of Hidden Orbital Orderin Superconducting CeCoIn<sub>5</sub>

ORAL

Abstract

Visualizing orbital degrees of freedom and orders is a new challenge in scanned microscopy. Some types of orbital order(OO) are virtually imperceptible because they do not reduce the overall crystal symmetry. Recently, however, direct visualization of quasiparticle scattering interference(QPI) has become a powerful technique for detecting OO states[1,2]. Hence, we model the QPI of (π,π) OO in both normal and superconductive phases and find distinct, sublattice-specific scattering interference patterns generated by OO,  which we predict to be strongly enhanced in the latter phase. Sublattice-resolved QPI visualization in superconducting CeCoIn5 then reveals two orthogonal QPI signatures at impurity atoms, with each QPI pattern specific to one sublattice. This discovery implies that QPI is a powerful technique to detect the hidden global symmetry-preserving orbital order in superconductors.

Publication: [1] Kostin A, Sprau P O, Kreisel A, et al. Imaging orbital-selective quasiparticles in the Hund's metal state of FeSe[J]. Nature materials, 2018, 17(10): 869-874.<br>[2] Sprau P O, Kostin A, Kreisel A, et al. Discovery of orbital-selective Cooper pairing in FeSe[J]. Science, 2017, 357(6346): 75-80.

Presenters

  • Weijiong Chen

    University of Oxford

Authors

  • Weijiong Chen

    University of Oxford

  • Clara Neerup N Breiø

    Univ of Copenhagen, Niels Bohr Institute, University of Copenhagen

  • Freek Massee

    Univ de Paris

  • Cedomir Petrovic

    Brookhaven National Laboratory

  • JC S Davis

    University of Oxford, University College Cork, University of Oxford; Cornell University; University College Cork; Max-Planck Institute for Chemical Physics of Solids, University of Oxford

  • Peter J Hirschfeld

    University of Florida, Department of Physics, University of Florida

  • Milan P Allan

    Leiden University

  • Brian M Andersen

    Niels Bohr Inst

  • Andreas Kreisel

    Univ Leipzig