Spontaneous time-reversal symmetry breaking by disorder in superconductors

IF 1.9 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Brian M. Andersen, Andreas Kreisel, P. J. Hirschfeld
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Abstract

A growing number of superconducting materials display evidence for spontaneous time-reversal symmetry breaking (TRSB) below their critical transition temperatures. Precisely what this implies for the nature of the superconducting ground state of such materials, however, is often not straightforward to infer. We review the experimental status and survey different theoretical mechanisms for the generation of TRSB in superconductors. In cases where a TRSB complex combination of two superconducting order parameter components is realized, defects, dislocations and sample edges may generate superflow patterns that can be picked up by magnetic probes. However, even single-component condensates that do not break time-reversal symmetry in their pure bulk phases can also support signatures of magnetism inside the superconducting state. This includes, for example, the generation of localized orbital current patterns or spin-polarization near atomic-scale impurities, twin boundaries and other defects. Signals of TRSB may also arise from a superconductivity-enhanced Ruderman-Kittel-Kasuya-Yosida exchange coupling between magnetic impurity moments present in the normal state. We discuss the relevance of these different mechanisms for TRSB in light of recent experiments on superconducting materials of current interest.
超导体中的无序自发时间逆对称破缺
越来越多的超导材料在临界转变温度以下显示出自发时间逆对称破缺(TRSB)的证据。然而,这对此类材料的超导基态性质究竟意味着什么,往往并不能直接推断出来。我们回顾了超导体中产生 TRSB 的实验现状,并研究了不同的理论机制。在实现了两个超导阶次参数成分的 TRSB 复合组合的情况下,缺陷、位错和样品边缘可能会产生超流模式,可被磁探针捕捉到。然而,即使是在纯体相中不破坏时间反转对称性的单组分凝聚态,也能在超导态内部支持磁性特征。例如,这包括在原子尺度的杂质、孪生边界和其他缺陷附近产生局部轨道电流模式或自旋极化。TRSB 信号还可能来自正常态中存在的磁性杂质矩之间的超导增强鲁德曼-基特尔-卡苏亚-约西达交换耦合。我们将根据最近对当前感兴趣的超导材料进行的实验,讨论这些不同机制与 TRSB 的相关性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Frontiers in Physics
Frontiers in Physics Mathematics-Mathematical Physics
CiteScore
4.50
自引率
6.50%
发文量
1215
审稿时长
12 weeks
期刊介绍: Frontiers in Physics publishes rigorously peer-reviewed research across the entire field, from experimental, to computational and theoretical physics. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, engineers and the public worldwide.
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