Nodal superconducting gap structure and topological surface states of UTe$_2$

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Christiansen, Hans, Geier, Max, Andersen, Brian M., Kreisel, Andreas
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866912602007797760
author Christiansen, Hans
Geier, Max
Andersen, Brian M.
Kreisel, Andreas
author_facet Christiansen, Hans
Geier, Max
Andersen, Brian M.
Kreisel, Andreas
contents The heavy-fermion compound UTe$_2$ is a candidate for hosting intrinsic spin-triplet superconductivity. At present, however, the type of triplet Cooper pairing realized in UTe$_2$ remains unknown, which calls for further experimental and theoretical investigations. In this paper, we develop a microscopic minimal model for the superconducting phases of UTe$_2$ based on recent findings in the description of its low-energy normal state electronic properties. We apply the resulting theoretical model to extract the nodal gap properties of the allowed superconducting ground states, and determine their associated topological surface states on the experimentally relevant (0-11) cleave plane. We find that the Fermi surface of UTe$_2$ enforces additional point nodes in excess to the point nodes imposed by symmetry, which may reconcile several experiments seemingly in conflict with B$_{2u}$ or B$_{3u}$ pairing symmetries. Furthermore, we map out the in-gap Majorana surface-bound modes existing on the (0-11) surface, and discuss their potential for additional insight into the pairing structure of UTe$_2$.
format Preprint
id arxiv_https___arxiv_org_abs_2503_11603
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nodal superconducting gap structure and topological surface states of UTe$_2$
Christiansen, Hans
Geier, Max
Andersen, Brian M.
Kreisel, Andreas
Superconductivity
Strongly Correlated Electrons
The heavy-fermion compound UTe$_2$ is a candidate for hosting intrinsic spin-triplet superconductivity. At present, however, the type of triplet Cooper pairing realized in UTe$_2$ remains unknown, which calls for further experimental and theoretical investigations. In this paper, we develop a microscopic minimal model for the superconducting phases of UTe$_2$ based on recent findings in the description of its low-energy normal state electronic properties. We apply the resulting theoretical model to extract the nodal gap properties of the allowed superconducting ground states, and determine their associated topological surface states on the experimentally relevant (0-11) cleave plane. We find that the Fermi surface of UTe$_2$ enforces additional point nodes in excess to the point nodes imposed by symmetry, which may reconcile several experiments seemingly in conflict with B$_{2u}$ or B$_{3u}$ pairing symmetries. Furthermore, we map out the in-gap Majorana surface-bound modes existing on the (0-11) surface, and discuss their potential for additional insight into the pairing structure of UTe$_2$.
title Nodal superconducting gap structure and topological surface states of UTe$_2$
topic Superconductivity
Strongly Correlated Electrons
url https://arxiv.org/abs/2503.11603