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Intimate relationship between spin configuration in the triplet pair and superconductivity in UTe2

Hiroki Matsumura, Yuki Takahashi, Riku Matsubayashi, Katsuki Kinjo, Shunsaku Kitagawa, Kenji Ishida, Yo Tokunaga, Hironori Sakai, Shinsaku Kambe, Motoi Kimata, Ai Nakamura, Yusei Shimizu, Yoshiya Homma, Dexin Li, Fuminori Honda, Atsushi Miyake, Dai Aoki, Tetsuya Furukawa, Takahiro Sasaki

DOI 10.1103/xr3p-cxbt · Physical Review B

T1

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Abstract

Spin-triplet superconductivity is an intriguing quantum coherent state with both spin and orbital degrees of freedom, which holds significant potential for future applications in quantum technology. However, how the spin of the triplet pairs responds to an external magnetic field remains poorly understood. This is mainly due to the absence of suitable spin-triplet superconductors. Here, we report results of Knight-shift and ac-susceptibility measurements on UTe2. We demonstrate that the spin susceptibility, which slightly decreases compared to the normal-state value below the superconducting (SC) transition temperature Tc, is rapidly restored and nearly recovers to the normal-state values around 5 T, well below the SC upper critical field Hc2 when the magnetic field is applied along the c axis (H∥c). In addition, we found that Hc2 of superconductivity becomes larger when the SC spin aligns with the magnetic field. By considering the results on H∥b, our results suggest the presence of a close relationship between the spin configuration of the triplet pair and Hc2, as well as the anisotropic pinning interaction acting on the triplet pairs. These phenomena, which have never been observed in spin-singlet superconductors, represent characteristic features unique to spin-triplet superconductors. We discuss the similarities between superconductivity in UTe2 and superfluid He3, focusing on their spin-triplet pairing states.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
UTe2

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2.06Pressure not reportedonset
UTe2

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Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

2.06Pressure not reportedonset
UTe2

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Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

2.1Pressure not reportedunknown
UTe2

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1.6Pressure not reportedunknown

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