Anisotropic field-induced changes in the superconducting order parameter of UTe2
Sangyun Lee, Andrew J. Woods, P. F. S. Rosa, S. M. Thomas, E. D. Bauer, Shi-Zeng Lin, R. Movshovich

TL;DR
This study investigates how magnetic fields along different axes affect the superconducting order parameter in UTe2, revealing anisotropic behavior and suggesting a specific two-component order parameter with field-induced changes.
Contribution
It provides the first detailed analysis of anisotropic field-induced modifications of the superconducting order parameter in UTe2 using specific heat measurements.
Findings
Residual Sommerfeld coefficient is anisotropic and field-dependent.
A kink at 4 T indicates a field-induced evolution of the order parameter.
The primary order parameter is likely B2u, with nodes near the a-b plane.
Abstract
UTe2 is a newly discovered unconventional superconductor, where electron Cooper pairs combine into a spin-triplet ground state. Here we report the specific heat C(H,T) of a high-quality single crystal of UTe2 with a single specific heat anomaly at the superconducting transition temperature T_c {\approx} 2 K and a small zero-field residual Sommerfeld coefficient {\gamma}_0 = C/T (T=0) = 10 mJ/mol-K^2. We applied magnetic field up to 12 T along the three principal crystallographic axes of UTe2 to probe the nature of the superconducting state. The evolution of the residual Sommerfeld coefficient as a function of magnetic field, {\gamma}_0 (H), is highly anisotropic and reveals distinct regions. In magnetic field up to 4 T applied along a, b, and c axes, we find {\gamma}_0{\approx}{\alpha}_i {\square}H, with i=a,b,c, as expected for an unconventional superconductor with nodes (zeros) of the…
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Taxonomy
TopicsRare-earth and actinide compounds · High-pressure geophysics and materials · Iron-based superconductors research
