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KTaO 异质界面超导体中的自发旋转对称破缺。

Spontaneous rotational symmetry breaking in KTaO heterointerface superconductors.

机构信息

State Key Laboratory of Surface Physics and Department of Physics, Fudan University, Shanghai, 200433, China.

ShanghaiTech Laboratory for Topological Physics & School of Physical Science and Technology, ShanghaiTech University, Shanghai, 201210, China.

出版信息

Nat Commun. 2023 May 26;14(1):3046. doi: 10.1038/s41467-023-38759-0.

Abstract

Broken symmetries play a fundamental role in superconductivity and influence many of its properties in a profound way. Understanding these symmetry breaking states is essential to elucidate the various exotic quantum behaviors in non-trivial superconductors. Here, we report an experimental observation of spontaneous rotational symmetry breaking of superconductivity at the heterointerface of amorphous (a)-YAlO/KTaO(111) with a superconducting transition temperature of 1.86 K. Both the magnetoresistance and superconducting critical field in an in-plane field manifest striking twofold symmetric oscillations deep inside the superconducting state, whereas the anisotropy vanishes in the normal state, demonstrating that it is an intrinsic property of the superconducting phase. We attribute this behavior to the mixed-parity superconducting state, which is an admixture of s-wave and p-wave pairing components induced by strong spin-orbit coupling inherent to inversion symmetry breaking at the heterointerface of a-YAlO/KTaO. Our work suggests an unconventional nature of the underlying pairing interaction in the KTaO heterointerface superconductors, and brings a new broad of perspective on understanding non-trivial superconducting properties at the artificial heterointerfaces.

摘要

破缺的对称在超导性中起着基本的作用,并以深刻的方式影响着许多其特性。理解这些对称破缺状态对于阐明非平凡超导材料中各种奇异的量子行为是至关重要的。在这里,我们报告了在非晶(a)-YAlO/KTaO(111)异质界面上超导性的自发旋转对称性破缺的实验观察结果,其超导转变温度为 1.86 K。在面内磁场中,磁阻和超导临界场在超导体内深处表现出显著的二倍对称振荡,而各向异性在正常状态下消失,表明这是超导相的固有性质。我们将这种行为归因于混合奇偶超导态,它是由异质界面处的反转对称性破缺引起的强自旋轨道耦合所诱导的 s 波和 p 波配对成分的混合。我们的工作表明了 KTaO 异质界面超导材料中基础配对相互作用的非常规性质,并为理解人工异质界面上的非平凡超导性质提供了一个新的广泛视角。

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