论文标题
配对效应:ute $ _2 $的时间反转损坏超导性的机制
Pair-Kondo effect: a mechanism for time-reversal broken superconductivity in UTe$_2$
论文作者
论文摘要
UTE $ _2 $的超导性的一个重要的开放难题是来自非磁性正常状态的时间反转超导性的出现。在单个二阶超导过渡中打破时间反向对称性需要两个退化的超导订单参数,这对于正骨UTE $ _2 $而言并不自然。此外,在压力下的实验(Braithwaite等,Comm。Phys。\ Bf {2},147(2019),Arxiv:1909.06074 [Cond-mat.str-el])表明,超导性在单个过渡窗口中的单个过渡窗口中的单个过渡范围内的超导性固定在一个有限参数窗口中,相反,与散布的距离相反,与截断性的隔离率相反,造型是偶然的,这是偶然的差异。在这些观察结果的推动下,我们提出了一种机制,即在接近磁相变变的系统中,没有意外或对称性的秩序参数变性,而无需意外或对称性的秩序参数变性。我们使用Landau理论证明,在库珀对的初始磁性和磁矩之间的立方耦合(成对kondo耦合)可以驱动时间反向对称性破坏超导性超导性,该超导能力在单个相距扩展区域的单个,弱的第一阶过渡中进行。我们讨论了热力学和共振超声测量中这种过渡的实验特征。配对昆多耦合的显微镜起源被视为通过手性库珀对筛选磁矩,这是由两个非降级阶参数构建的 - 将近托筛选扩展到非常规对。
An important open puzzle in the superconductivity of UTe$_2$ is the emergence of time-reversal broken superconductivity from a non-magnetic normal state. Breaking time-reversal symmetry in a single second-order superconducting transition requires the existence of two degenerate superconducting order parameters, which is not natural for orthorhombic UTe$_2$. Moreover, experiments under pressure (Braithwaite et. al., Comm. Phys. \bf{2}, 147 (2019), arXiv:1909.06074 [cond-mat.str-el]) suggest that superconductivity sets in at a single transition temperature in a finite parameter window, in contrast to the splitting between the symmetry breaking temperatures expected for accidental degenerate orders. Motivated by these observations, we propose a mechanism for the emergence of time-reversal breaking superconductivity without accidental or symmetry-enforced order parameter degeneracies in systems close to a magnetic phase transition. We demonstrate using Landau theory that a cubic coupling between incipient magnetic order and magnetic moments of Cooper pairs (pair-Kondo coupling) can drive time-reversal symmetry breaking superconductivity that onsets in a single, weakly first order transition over an extended region of the phase diagram. We discuss the experimental signatures of such transition in thermodynamic and resonant ultrasound measurements. A microscopic origin of pair-Kondo coupling is identified as screening of magnetic moments by chiral Cooper pairs, built out of two non-degenerate order parameters - an extension of Kondo screening to unconventional pairs.