Field-resilient supercurrent diode in a multiferroic Josephson junction

H Hung-Yu Yang J Joseph J. Cuozzo A Anand Johnson Bokka G Gang Qiu C Christopher Eckberg Y Yanfeng Lyu S Shuyuan Huyan C Ching-Wu Chu (Department of Physics and Texas Center for Superconductivity at the University of Houston) K Kenji Watanabe T Takashi Taniguchi K Kang L. Wang

Abstract

Abstract The research on supercurrent diodes has surged rapidly due to their potential applications in electronic circuits at cryogenic temperatures. To unlock this functionality, it is essential to find supercurrent diodes that can work consistently at zero magnetic field and under ubiquitous stray fields generated in electronic circuits. However, a supercurrent diode with robust field tolerance is currently lacking. Here, we demonstrate a field-resilient supercurrent diode by incorporating a 2D multiferroic material into a Josephson junction, and observed a pronounced supercurrent diode effect at zero magnetic field. More importantly, the supercurrent rectification persists over a wide and bipolar magnetic field range beyond industrial standards for field tolerance. By theoretically modeling a multiferroic Josephson junction, we unveil that the interplay between spin-orbit coupling and multiferroicity underlies the unusual field resilience of the observed diode effect. This work introduces multiferroic Josephson junctions as a new field-resilient superconducting device for cryogenic electronics.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 21, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (11)

H

Hung-Yu Yang

J

Joseph J. Cuozzo

A

Anand Johnson Bokka

G

Gang Qiu

C

Christopher Eckberg

Y

Yanfeng Lyu

S

Shuyuan Huyan

C

Ching-Wu Chu

Department of Physics and Texas Center for Superconductivity at the University of Houston

K

Kenji Watanabe

T

Takashi Taniguchi

K

Kang L. Wang