Communications Physics (Jun 2025)

Optimizing one dimensional superconducting diodes: interplay of Rashba spin-orbit coupling and magnetic fields

  • Sayak Bhowmik,
  • Dibyendu Samanta,
  • Ashis K. Nandy,
  • Arijit Saha,
  • Sudeep Kumar Ghosh

DOI
https://doi.org/10.1038/s42005-025-02044-x
Journal volume & issue
Vol. 8, no. 1
pp. 1 – 8

Abstract

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Abstract The superconducting diode effect (SDE) refers to the non-reciprocal nature of the critical current (maximum current that a superconductor can withstand before turning into a normal metal) of a superconducting device. Here, we investigate SDE in helical superconductors with broken inversion and time-reversal symmetry, focusing on a prototypical Rashba nanowire device proximitized by an s-wave superconductor and subjected to external magnetic fields. Using a self-consistent Bogoliubov-de Gennes mean-field formalism, we analyze the interplay between linear and higher-order spin-orbit coupling (SOC), bulk supercurrents, and external magnetic fields. Our results demonstrate that Rashba nanowires with only linear SOC can achieve incredibly large diode efficiency ≳45% through the interplay of longitudinal and transverse magnetic fields. Furthermore, higher-order SOC enables finite diode efficiency even without a longitudinal Zeeman field, which can be utilized to reveal its presence and strength in nanowires. We present a comprehensive phase diagram of the device elucidating the emergent Fulde-Ferrell-Larkin-Ovchinnikov (FFLO) superconducting state and demonstrate that proximitized Rashba nanowires offer a versatile, practical platform for SDE, with potential realizations in existing material systems. These results provide crucial insights for optimizing SDE in nanoscale superconducting devices, paving the way for next-generation dissipationless quantum electronics.