二碲化铀的定向上临界磁场和态密度

IF 2.8
Habtamu Anagaw Muluneh
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摘要

超导体UTe2由于其独特的自旋三重态配对和较高的临界上磁场而引起了人们的广泛关注,使其成为探索非常规超导性的有希望的候选者。本文从理论上研究了UTe2中上部临界磁场HC2的角度依赖性和温度依赖性态密度(DOS)。采用各向异性金兹堡-朗道理论和微观模型,分析了HC2在关键晶轴上的取向依赖行为,特别是a、b和c轴,它们分别表现出≈7、15和11 T的临界场。这些结果表明,HC2具有很强的各向异性,沿b轴有一个峰值,表明自旋三重态对与磁场有深刻的对齐效应。此外,温度相关的DOS计算显示,在较低温度下,费米能级附近的状态明显增加,支持存在具有潜在节点间隙的非常规配对。这些发现表明自旋涨落和电子相关性之间存在复杂的相互作用,有助于UTe2中强健的超导相,也为UTe2中驱动超导的机制提供了更深入的见解,并突出了其在需要高场超导体的应用中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Orientation-Dependent Upper Critical Magnetic Field and Density of State for Uranium Ditelluride

Orientation-Dependent Upper Critical Magnetic Field and Density of State for Uranium Ditelluride

Orientation-Dependent Upper Critical Magnetic Field and Density of State for Uranium Ditelluride

Orientation-Dependent Upper Critical Magnetic Field and Density of State for Uranium Ditelluride

The superconductor UTe2 has garnered considerable attention due to its unique spin-triplet pairing and high upper critical magnetic field, making it a promising candidate for exploring unconventional superconductivity. This study presents a theoretical investigation into the angle dependence of the upper critical magnetic field HC2 and the temperature-dependent density of states (DOS) within UTe2. By employing anisotropic Ginzburg–Landau theory alongside microscopic modeling, the orientation-dependent behavior of HC2 is analyzed along key crystallographic axes, particularly the a-, b- and c-axes, which demonstrate critical fields of ≈7, 15, and 11 T respectively. These results indicate a strong anisotropy in HC2, with a peak along the b-axis, suggesting a profound alignment effect of the spin-triplet pairs with the magnetic field. Additionally, temperature-dependent DOS calculations reveal a pronounced increase in states near the Fermi level at lower temperatures, supporting the presence of unconventional pairing with potential nodal gaps. These findings suggest a complex interplay between spin fluctuations and electronic correlations, contributing to the robust superconducting phase in UTe2 and also provides deeper insights into the mechanisms driving superconductivity in UTe2 and highlights its potential for applications requiring high-field superconductors.

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