High-Field Specific Heat and Fundamental Superconducting Properties of the Single-Phase Type-II Superconductor V 3 Si

The specific heat data above the upper critical magnetic field H c2 , the angular dependence of H c2 , and fundamental superconducting parameters were consequently determined. The V 3 Si sample used in this research does not exhibit the structural transition and its high quality was confirmed by the experimental results of electrical resistivity, magnetization, specific heat, and the X-ray powder diffraction measurements. The lower critical magnetic field H c1 was determined to be 3.3 kOe from magnetization measurements, enabling the estimation of the Gintzburg–Landau coherent length ξ 0 (40 Å), the London penetration depth λ 0 (447 Å) and the Gintzburg–Landau parameter κ GL (11.3). The upper critical magnetic field H c2 was found to be nearly angle-independent and equal to 21 T, as confirmed by tunnel diode oscillator (TDO) measurements. Specific heat measurements performed above and below H c2 were used to estimate the Sommerfeld coefficient, revealing a slight increase from 60 mJ/K 2 ·mol at zero magnetic field to 67 mJ/K 2 ·mol at 31.6 T. These γ-values are considerably enhanced compared with those of normal metals and conventional superconductors, indicating a high density of states (DOS) at the Fermi energy. The combination of a high DOS at the Fermi level and a high Debye temperature (544 K at 0 T) supports the relatively high superconducting transition temperature of V 3 Si (T c = 17 K). The extracted superconducting parameters indicate that V 3 Si is a Type-II s-wave superconductor in the weak-coupling limit.

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Journal
Journal of the Physical Society of Japan
Published
2026-09-11
DOI
https://doi.org/10.7566/jpsj.95.104707
Primary Topic
Superconductivity in MgB2 and Alloys
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article
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High-Field Specific Heat and Fundamental Superconducting Properties of the Single-Phase Type-II Superconductor V 3 Si

Akira Iyo, Satoru Nakatsuji, Akito Sakai, Yoshimitsu Kohama et al.
Journal of the Physical Society of Japan
Superconductivity in MgB2 and Alloys
article

High-Field Specific Heat and Fundamental Superconducting Properties of the Single-Phase Type-II Superconductor V 3 Si

Akira Iyo, Satoru Nakatsuji, Akito Sakai, Yoshimitsu Kohama, Takao Ebihara, Mihiro Asakura, Kazu Kobayashi
article en

Abstract

The specific heat data above the upper critical magnetic field H c2 , the angular dependence of H c2 , and fundamental superconducting parameters were consequently determined. The V 3 Si sample used in this research does not exhibit the structural transition and its high quality was confirmed by the experimental results of electrical resistivity, magnetization, specific heat, and the X-ray powder diffraction measurements. The lower critical magnetic field H c1 was determined to be 3.3 kOe from magnetization measurements, enabling the estimation of the Gintzburg–Landau coherent length ξ 0 (40 Å), the London penetration depth λ 0 (447 Å) and the Gintzburg–Landau parameter κ GL (11.3). The upper critical magnetic field H c2 was found to be nearly angle-independent and equal to 21 T, as confirmed by tunnel diode oscillator (TDO) measurements. Specific heat measurements performed above and below H c2 were used to estimate the Sommerfeld coefficient, revealing a slight increase from 60 mJ/K 2 ·mol at zero magnetic field to 67 mJ/K 2 ·mol at 31.6 T. These γ-values are considerably enhanced compared with those of normal metals and conventional superconductors, indicating a high density of states (DOS) at the Fermi energy. The combination of a high DOS at the Fermi level and a high Debye temperature (544 K at 0 T) supports the relatively high superconducting transition temperature of V 3 Si (T c = 17 K). The extracted superconducting parameters indicate that V 3 Si is a Type-II s-wave superconductor in the weak-coupling limit.

Journal of the Physical Society of JapanVol. 95(10)
Canadian Institute for Advanced Research (CA), Shizuoka University (JP), Johns Hopkins University (US), University of Baltimore (US), National Institute of Advanced Industrial Science and Technology (JP), The University of Tokyo (JP)
Affordable and clean energy
Openalex Percentile: Top 16%
Superconductivity in MgB2 and Alloys
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