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.
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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