Tuning Triplet Superconductivity States at LSMO/YBCO Interfaces

ORAL

Abstract

Triplet superconductivity at a high-Tc-superconductor/Ferromagnetic-oxide (SC/FM) interface potentially has a significant impact on the development of spintronics, quantum information, and the search for Majorana fermions. Triplet superconductivity has three states: sz=0 and ±1. The sz=0 state, also known as the FFLO state, exhibits short penetration depth and its wave function oscillates over a short distance within the ferromagnetic layer. In contrast, the sz=±1 states have a long penetration depth and can be considered a dissipationless spin-polarized current. To tune the superconductivity within these states, an additional interfacial layer with a magnetic moment perpendicular to that of the ferromagnetic layer is proposed. We have discovered that the induced Cu moment at the interface may function as the magnetic interfacial layer. Furthermore, its magnetic moment direction can be controlled by using a field-cooling process with a specific range of fields. The orientation of the Cu moment can be altered by disrupted flipping between three different alignments with respect to that of the FM layer. With an appropriately applied field during the field-cooling process, we observed a significant enhancement of the superconducting critical current due to the generation of triplet superconductivity at sz= ±1. In this presentation, we will present the transport measurements to elucidate the collective behavior and polarized neutron reflectivity to reveal the interface conditions.

*We acknowledge the Ministry of Science and Technology (MOST) in Taiwan for financial support through Grant No. MOST-111-2112-M-110-018 (H. C.), MOST-109-2112-M-390-002 (S. J. S.), MOST-109-2811-M-110-514 (G. D. D.) and MOST 109-2123-M-002-002 (J. G. Lin), RFBR No. 20-02-00541 and Ministry of Science and Higher Education of the Russian Federation, "Quantum" No. АААА-А18-118020190095-4) (V. I. G). We appreciate the insightful discussion with Academian Ting-Kuo Lee and Professor Chun-Yu Mou. Thanks go to ANSTO for the assistance in PNR measurements and to the Nano-center, Core-facilities centers and the center of Crystal Research of NSYSU for providing technical supports, such as XRD, TEM, AFM and SQUID.

Publication: Submitted to Applied Surface Science

Presenters

  • Hsiung Chou

    • Department of Physics, National Sun Yat-sen University

Authors

  • Hsiung Chou

    • Department of Physics, National Sun Yat-sen University
  • S. J. Sun

    • Department of Physics National University of Kaohsiung
  • Kung-Shang Yang

    • National Sun Yat-sen University
  • G. D. Dwivedi

    • Department of Physics, Kalinga University
  • Chiu-Hao Chen

    • General Education Cener, Wenzao Ursuline University of Languages
  • S. L. Cheng

    • National Synchrotron Radiation Research Center
  • J. W. Chiou

    • Department of Applied Physics, National University of Kaohsiung
  • Y. Y. Chin

    • Department of Physcis, National Chung Cheng University
  • H. J. Lin

    • National Synchrotron Radiation Research Center
  • J. G. Lin

    • Center for Condensed Matter Sciences, National Taiwan University
  • V. I. Grebennikov

    • M.N. Mikheev Institute of Metal Physics, Ural Division of Russian Academy of Sciences