English

Interplay between Superconductivity and Altermagnetism in Disordered Materials and Heterostructures

Superconductivity 2026-05-05 v4 Mesoscale and Nanoscale Physics

Abstract

We study the interplay between superconductivity and altermagnetism in disordered systems using recently derived quantum kinetic transport equations. Starting from this framework, we derive the Ginzburg-Landau free energy and identify, in addition to the conventional pair-breaking term, a coupling between the spin and the spatial variation of the superconducting order parameter. Two distinct effects emerge from this coupling. The first is a nonlinear magnetoelectric effect, in which a supercurrent (i.e., a phase gradient) induces a spin texture; this contribution is quadratic in the phase gradient. The second effect arises when the magnitude, rather than the phase, of the superconducting order parameter varies in space, likewise leading to a finite magnetization. We show that these two contributions compete in the case of an Abrikosov vortex, where both the amplitude and phase of the order parameter vary spatially. The effect associated with amplitude variations also gives rise to a proximity-induced magnetization (PIM) in hybrid structures composed of a superconductor (S) and an altermagnet (AM). Using quasiclassical theory, we analyze the PIM in diffusive S/AM bilayers and S/AM/S Josephson junctions, and determine the induced magnetization profiles. In Josephson junctions, where both the PIM and the nonlinear magnetoelectric effect coexist, we further predict the occurrence of 00-π\pi transitions.

Keywords

Cite

@article{arxiv.2512.04819,
  title  = {Interplay between Superconductivity and Altermagnetism in Disordered Materials and Heterostructures},
  author = {Rodrigo de las Heras and Tim Kokkeler and Stefan Ilić and Ilya V. Tokatly and F. Sebastian Bergeret},
  journal= {arXiv preprint arXiv:2512.04819},
  year   = {2026}
}

Comments

14 pages, 8 figures

R2 v1 2026-07-01T08:09:33.897Z