Superconducting critical temperature elevated by intense magnetic fields

Z Z. Wu H H. Chen T T. I. Weinberger (Cavendish Laboratory, Department of Physics) A A. Cabala (Faculty of Mathematics and Physics) D D. E. Graf (National High Magnetic Field Laboratory) Y Y. Skourski (Hochfeld-Magnetlabor Dresden (HLD-EMFL)) W W. Xie Y Y. Ling (Wuhan National High Magnetic Field Center) Z Z. Zhu (Wuhan National High Magnetic Field Center) V V. Sechovský (Faculty of Mathematics and Physics) M M. Vališka (Faculty of Mathematics and Physics) F F. M. Grosche (Cavendish Laboratory, Department of Physics) A A. G. Eaton (Cavendish Laboratory, Department of Physics)

Abstract

Below a critical temperature T c , superconductors transport electrical charge without dissipative energy losses. The application of a magnetic field B generally acts to suppress T c , up to some critical field strength at which T c → 0 K. Here, we investigate magnetic field–induced superconductivity in high-quality specimens of the triplet superconductor candidate UTe 2 in pulsed magnetic fields up to B = 70 T. Strikingly, we find that this material has a higher T c when B > 40 T ( T c ≈ 2.4 K) than it does for B = 0 T ( T c = 2.1 K). This observation points to a fundamentally distinct mechanism for the formation of superconductivity at high B in UTe 2 compared to the case of B = 0 T.

Article Details

Volume / Issue Vol. 122, Issue 2
Published January 14, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (13)

Z

Z. Wu

H

H. Chen

T

T. I. Weinberger

Cavendish Laboratory, Department of Physics

A

A. Cabala

Faculty of Mathematics and Physics

D

D. E. Graf

National High Magnetic Field Laboratory

Y

Y. Skourski

Hochfeld-Magnetlabor Dresden (HLD-EMFL)

W

W. Xie

Y

Y. Ling

Wuhan National High Magnetic Field Center

Z

Z. Zhu

Wuhan National High Magnetic Field Center

V

V. Sechovský

Faculty of Mathematics and Physics

M

M. Vališka

Faculty of Mathematics and Physics

F

F. M. Grosche

Cavendish Laboratory, Department of Physics

A

A. G. Eaton

Cavendish Laboratory, Department of Physics