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Pseudo Point Nodal Superconducting Gap in Spin-Triplet UTe$_2$

Superconductivity 2026-03-13 v1 Materials Science

Abstract

The unconventional superconductor UTe2_2 represents a rare example of spin-triplet pairing with potentially topologically protected quantum states. However, conflicting reports on its gap structure, particularly regarding point nodes, have hindered understanding of the order parameter symmetry and topological properties. Here we report high-resolution thermal conductivity measurements on high-quality UTe2_2 single crystals down to ~50 mK that resolve the gap anisotropy through bulk directional transport. The bb-axis thermal conductivity κb/T\kappa_b/T exhibits negligible residual conductivity as T0T \to 0, and its temperature dependence is consistent with a small superconducting energy gap along the bb-axis. Under magnetic fields, the residual κb/T\kappa_b/T shows only weak field-induced enhancement. Remarkably, a threshold field emerges at low fields for HaH \parallel a, characterized by a kink that signals a change in quasiparticle transport normal to the field. Below the threshold, κb/T\kappa_b/T remains isotropic for all field orientations, whereas strong anisotropy between transport along and normal to the field develops above it. These signatures strongly suggest that UTe2_2 exhibits a fully gapped state with a pseudo point-nodal structure, where gap minima approach but never reach zero. We estimate the minimal gap Δmin/Δ00.1\Delta_{min}/\Delta_0 \sim 0.1 along the bb-axis, where Δ0\Delta_0 is the characteristic superconducting gap. This unusual gap structure provides crucial insights into the pairing mechanism and topology of this spin-triplet superconductor and excludes non-unitary mixing of pairing symmetries.

Keywords

Cite

@article{arxiv.2603.11278,
  title  = {Pseudo Point Nodal Superconducting Gap in Spin-Triplet UTe$_2$},
  author = {S. Hosoi and K. Imamura and M. M. Bordelon and E. D. Bauer and S. M. Thomas and F. Ronning and P. F. S. Rosa and R. Movshovich and I. Vekhter and Y. Matsuda},
  journal= {arXiv preprint arXiv:2603.11278},
  year   = {2026}
}

Comments

8 pages, 4 figures, submitted version