Interplay between superconductivity and spin-dependent fields in nanowire-based systems
J. Baumard, J. Cayssol, A. Buzdin, F. S. Bergeret

TL;DR
This paper theoretically investigates how superconductivity interacts with spin-dependent fields in nanowire systems, revealing conditions for anomalous supercurrents and their dependence on system configuration and symmetry.
Contribution
It introduces a detailed analysis of anomalous charge supercurrents in nanowire systems with spin-orbit coupling and magnetic fields, highlighting differences between single and double wire setups.
Findings
Anomalous supercurrents depend on the orientation of Zeeman fields.
In single wires, both longitudinal and transverse Zeeman components are needed for currents.
In double wires, parallel components to SOC can generate currents.
Abstract
The interplay between superconductivity, spin-orbit coupling, and Zeeman or exchange field, is studied theoretically in two different setups: a single wire in which all these fields coexist, and a double wire system in which superconducting pairing and the spin-dependent fields are spatially separated. We first explore a magnetoelectric effect, namely the appearance of anomalous charge supercurrents. We determine the conditions under which such currents are allowed by symmetry and express them in terms of the SU(2) electric and magnetic fields. In leading order in the strength of the fields we find that in the single wire setup such currents may appear only when the Zeeman field has both, a longitudinal and transverse component with respect to the spin-orbit field. In contrast, in the two wire setup a parallel component to the SOC can generate the anomalous current, which is allowed by…
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