PRESS RELEASE

Nonreciprocal transport in gate-induced polar superconductor SrTiO3:Yuki Itabashi(D1), Department of Applied Physics. Assistant Professor Toshiya Ideue, Quantum - Phase Electronics Center. Professor Yoshihiro Iwasa, Department of Applied Physics, and other researchers.

Written by Public Relations Office | Mar 29, 2020 3:00:00 PM

 

Authors
Y. M. Itahashi, T. Ideue, Y. Saito, S. Shimizu, T. Ouchi, T. Nojima, Y. Iwasa

Abstract
Polar conductors/superconductors with Rashba-type spin-orbit interaction are potential material platforms for quantum transport and spintronic functionalities. One of their inherent properties is the nonreciprocal transport, where the rightward and leftward currents become inequivalent, reflecting spatial inversion/time-reversal symmetry breaking. Such a rectification effect originating from the polar symmetry has been recently observed at interfaces or bulk Rashba semiconductors, while its mechanism in a polar superconductor remains elusive. Here, we report the nonreciprocal transport in gate-induced two-dimensional superconductor SrTiO3, which is a Rashba superconductor candidate. In addition to the gigantic enhancement of nonreciprocal signals in the superconducting fluctuation region, we found kink and sharp peak structures around critical temperatures, which reflect the crossover behavior from the paraconductivity origin to the vortex origin, based on a microscopic theory. The present result proves that the nonreciprocal transport is a powerful tool for investigating the interfacial/polar superconductors without inversion symmetry, where rich exotic features are theoretically prognosticated.



Science Advances:https://advances.sciencemag.org/content/6/13/eaay9120.full