Pair wave function symmetry in UTe2 from zero-energy surface state visualization.

Gu Q., Wang S., Carroll JP., Zhussupbekov K., Broyles C., Ran S., Butch NP., Horn JA., Saha S., Paglione J., Liu X., Davis JCS., Lee D-H.

Although nodal spin-triplet topological superconductivity appears probable in uranium ditelluride (UTe2), its superconductive order parameter Δk remains unestablished. In theory, a distinctive identifier would be the existence of a superconductive topological surface band, which could facilitate zero-energy Andreev tunneling to an s-wave superconductor and also distinguish a chiral from a nonchiral Δk through enhanced s-wave proximity. In this study, we used s-wave superconductive scan tips and detected intense zero-energy Andreev conductance at the UTe2 (0-11) termination surface. Imaging revealed subgap quasiparticle scattering interference signatures with a-axis orientation. The observed zero-energy Andreev peak splitting with enhanced s-wave proximity signifies that Δk of UTe2 is a nonchiral state: B1u, B2u, or B3u. However, if the quasiparticle scattering along the a axis is internodal, then a nonchiral B3u state is the most consistent for UTe2.

DOI

10.1126/science.adk7219

Type

Journal article

Journal

Science

Publication Date

29/05/2025

Volume

388

Pages

938 - 944

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