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非中心对称超导体CaPtAs中的同时节点超导性和时间反演对称性破缺

Simultaneous Nodal Superconductivity and Time-Reversal Symmetry Breaking in the Noncentrosymmetric Superconductor CaPtAs.

作者信息

Shang T, Smidman M, Wang A, Chang L-J, Baines C, Lee M K, Nie Z Y, Pang G M, Xie W, Jiang W B, Shi M, Medarde M, Shiroka T, Yuan H Q

机构信息

Laboratory for Multiscale Materials Experiments, Paul Scherrer Institut, Villigen CH-5232, Switzerland.

Physik-Institut, Universität Zürich, Winterthurerstrasse 190, Zürich CH-8057, Switzerland.

出版信息

Phys Rev Lett. 2020 May 22;124(20):207001. doi: 10.1103/PhysRevLett.124.207001.

Abstract

By employing a series of experimental techniques, we provide clear evidence that CaPtAs represents a rare example of a noncentrosymmetric superconductor which simultaneously exhibits nodes in the superconducting gap and broken time-reversal symmetry (TRS) in its superconducting state (below T_{c}≈1.5  K). Unlike in fully gapped superconductors, the magnetic penetration depth λ(T) does not saturate at low temperatures, but instead it shows a T^{2} dependence, characteristic of gap nodes. Both the superfluid density and the electronic specific heat are best described by a two-gap model comprising of a nodeless gap and a gap with nodes, rather than by single-band models. At the same time, zero-field muon-spin relaxation spectra exhibit increased relaxation rates below the onset of superconductivity, implying that TRS is broken in the superconducting state of CaPtAs, hence indicating its unconventional nature. Our observations suggest CaPtAs to be a new remarkable material that links two apparently disparate classes, that of TRS-breaking correlated magnetic superconductors with nodal gaps and the weakly correlated noncentrosymmetric superconductors with broken TRS, normally exhibiting only a fully gapped behavior.

摘要

通过采用一系列实验技术,我们提供了明确的证据表明CaPtAs是一种非中心对称超导体的罕见例子,它在超导能隙中同时出现节点,并且在超导态(低于Tc≈1.5 K)下打破了时间反演对称性(TRS)。与完全能隙超导体不同,磁穿透深度λ(T)在低温下不会饱和,而是呈现出T²依赖性,这是能隙节点的特征。超流密度和电子比热最好用一个由无节点能隙和有节点能隙组成的两能隙模型来描述,而不是用单带模型。同时,零场μ子自旋弛豫谱在超导开始以下显示出增加的弛豫率,这意味着CaPtAs的超导态中TRS被打破,因此表明其非传统性质。我们的观察结果表明CaPtAs是一种新的非凡材料,它连接了两个明显不同的类别,即具有节点能隙的打破TRS的关联磁超导体和具有打破TRS的弱关联非中心对称超导体,后者通常只表现出完全能隙行为。

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