论文标题

UTE2中的Weyl超导性

Weyl Superconductivity in UTe2

论文作者

Hayes, Ian M., Wei, Di S., Metz, Tristin, Zhang, Jian, Eo, Yun Suk, Ran, Sheng, Saha, Shanta R., Collini, John, Butch, Nicholas P., Agterberg, Daniel F., Kapitulnik, Aharon, Paglione, Johnpierre

论文摘要

寻找拓扑量子计算的材料平台最近集中在非常规的超导体上。这样的物质系统,其中超导顺序参数破坏了晶体点基的对称性,能够托管新现象,包括新兴的主要主要粒子。在非常规超导体中,最近发现的UTE2是独特的,其中自旋 - 三曲线超导性从顺磁正常状态出现。尽管UTE2可以被认为是已知的铁磁超导体家族的亲戚,但该材料的独特晶体结构和实验表明零温度为确定超导状态的对称性,磁性和拓扑构成了巨大的挑战。这些新兴属性将确定UTE2对将来的Spintronics和量子信息应用的实用性。在这里,我们报告了进入超导状态后对非零极性KERR效应的观察以及特定热量中的两个过渡的观察结果,该状态共同表明UTE2中的超导性的特征是阶参数的特征,其两个组件具有两个分解时间反向对称性的组成部分。这些数据使我们能够对订单参数的对称性进行牢固的约束,这强烈表明UTE2是一种托有手性费米表面状态的Weyl超导体。

The search for a material platform for topological quantum computation has recently focused on unconventional superconductors. Such material systems, where the superconducting order parameter breaks a symmetry of the crystal point group, are capable of hosting novel phenomena, including emergent Majorana quasiparticles. Unique among unconventional superconductors is the recently discovered UTe2, where spin-triplet superconductivity emerges from a paramagnetic normal state. Although UTe2 could be considered a relative of a family of known ferromagnetic superconductors, the unique crystal structure of this material and experimentally suggested zero Curie temperature pose a great challenge to determining the symmetries, magnetism, and topology underlying the superconducting state. These emergent properties will determine the utility of UTe2 for future spintronics and quantum information applications. Here, we report observations of a non-zero polar Kerr effect and of two transitions in the specific heat upon entering the superconducting state, which together show that the superconductivity in UTe2 is characterized by an order parameter with two components that breaks time reversal symmetry. These data allow us to place firm constraints on the symmetries of the order parameter, which strongly suggest that UTe2 is a Weyl superconductor that hosts chiral Fermi arc surface states.

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