arXiv · 2605.07656
Finite temperature pair density wave superconductivity in $d$-wave altermagnets
Abstract
We demonstrate that altermagnetism provides a field-free mechanism for stabilizing finite-momentum superconductivity in two dimensions. Using a non-perturbative static path approximation Monte Carlo approach, we show that a d-wave altermagnet supports a robust pair-density-wave (PDW) phase that persists over a finite temperature window despite strong thermal fluctuations. The underlying mechanism originates from momentum-dependent spin splitting, which effectively enhances pairing instabilities at finite center-of-mass momentum without Zeeman fields. We identify distinct thermal scales associated with phase coherence, gap closing, and pseudogap formation, and establish characteristic spectroscopic and real-space signatures of the PDW state. Our results reveal altermagnetism as a robust route to thermally stable finite-momentum superconductivity and provide experimentally testable signatures for altermagnetic materials.
Explore related subjects
Keep this discovery
Amrutha N Madhusuthanan, Madhuparna Karmakar. 2026-05-08. Finite temperature pair density wave superconductivity in $d$-wave altermagnets. https://arxiv.org/abs/2605.07656
Cite the original work for its findings. Save a collection to share your selection of sources.