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Superconducting Gap Opening in LSMO layer by the LSMO/YBCO Interfaces

ORAL

Abstract

The superconducting proximity effect arises in a non-superconducting layer adjacent to a superconductor, where the wavefunction of Cooper pairs penetrates across the interface, decaying exponentially with distance into the non-superconducting region. This Cooper pair incorporation modifies the electronic band structure of the non-superconducting layer, creating an energy gap in the proximity region to accommodate these pairs. Additionally, the intrinsic band structure of the non-superconducting layer controls the symmetry type of the proximally induced Cooper pairs: for example, an s-wave pairing symmetry is observed in a gold film deposited on the ab-plane of a YBa2Cu3O7-δ (YBCO) film, whereas a p-wave or chiral d-wave symmetry is induced in single-layer graphene on a cuprate superconductor. When a strongly ferromagnetic manganite, La0.67Sr0.33MnO3 (LSMO) film is grown on a YBCO film, the spin-triplet superconducting pairs emerges in the LSMO layer due to a complex coupling proximally between the superconductivity and ferromagnetic interactions at the LSMO/YBCO interface. The state of these induced spin-triplet pairs can be controlled by manipulating the orientation of the induced Cu moment at the interface by a specific magnetic field cooling procedure. In the case where the spin-triplet Cooper pairs exhibit a parallel spin alignment (even-spin state), we observed an energy gap of 38 ± 5 meV, compatible to the superconducting gap of YBCO in the b direction, opening in the odd symmetrical O-2p orbit of the LSMO layer. This preserves the total wavefunction of the triplet superconducting pairs in the odd symmetry.

Publication: H. Chou et al. "Controllable Spin-triplet Superconductivity States and Enhanced Non-dissipation Spin-polarized Supercurrents in YBa2Cu3O7/La0.67Sr0.33MnO3 Interfaces" Applied Surface Science 644, 158739 (2024).<br>S. Kumawat et al. "Magnetic field enhancement in critical current and possible triplet superconductivity in LSMO/YBCO/LSMO heterostructures" The Journal of Physical Chemistry part C 127, 6861 (2023).<br><br>

Presenters

  • Hsiung Chou

    National Sun Yat-sen University

Authors

  • Hsiung Chou

    National Sun Yat-sen University

  • S.-J Sun

    National University of Kaohsiung

  • K. W. Hsueh

    National Sun Yat-sen University

  • Alexander Grutter

    National Institute of Standards and Technology (NIST), National Institute Standard and Technology

  • Z. Q. Sun

    National Sun Yat-sen University

  • L. T. Chen

    National Sun Yat-sen University

  • David Cortie

    Australian Nuclear Science and Technology Organization

  • T. Y. Huang

    National Synchrotron Radiation Research Center

  • S. C. Weng

    National Synchrotron Radiation Research Center, Hsinchu 30076, Taiwan, National Synchrotron Radiation Research Center

  • Y. Y. Chin

    National Chung Cheng University

  • H. J. Lin

    National Synchrotron Radiation Research Center

  • J. W. Chiou

    National University of Kaohsiung

  • Jeffrey W Lynn

    National Institute of Standards and Technology (NIST), NIST Center for Neutron Research