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磁性拓扑绝缘体中的界面诱导超导性。

Interface-induced superconductivity in magnetic topological insulators.

作者信息

Yi Hemian, Zhao Yi-Fan, Chan Ying-Ting, Cai Jiaqi, Mei Ruobing, Wu Xianxin, Yan Zi-Jie, Zhou Ling-Jie, Zhang Ruoxi, Wang Zihao, Paolini Stephen, Xiao Run, Wang Ke, Richardella Anthony R, Singleton John, Winter Laurel E, Prokscha Thomas, Salman Zaher, Suter Andreas, Balakrishnan Purnima P, Grutter Alexander J, Chan Moses H W, Samarth Nitin, Xu Xiaodong, Wu Weida, Liu Chao-Xing, Chang Cui-Zu

机构信息

Department of Physics, The Pennsylvania State University, University Park, PA 16802, USA.

Department of Physics and Astronomy, Rutgers University, Piscataway, NJ 08854, USA.

出版信息

Science. 2024 Feb 9;383(6683):634-639. doi: 10.1126/science.adk1270. Epub 2024 Feb 8.

Abstract

The interface between two different materials can show unexpected quantum phenomena. In this study, we used molecular beam epitaxy to synthesize heterostructures formed by stacking together two magnetic materials, a ferromagnetic topological insulator (TI) and an antiferromagnetic iron chalcogenide (FeTe). We observed emergent interface-induced superconductivity in these heterostructures and demonstrated the co-occurrence of superconductivity, ferromagnetism, and topological band structure in the magnetic TI layer-the three essential ingredients of chiral topological superconductivity (TSC). The unusual coexistence of ferromagnetism and superconductivity is accompanied by a high upper critical magnetic field that exceeds the Pauli paramagnetic limit for conventional superconductors at low temperatures. These magnetic TI/FeTe heterostructures with robust superconductivity and atomically sharp interfaces provide an ideal wafer-scale platform for the exploration of chiral TSC and Majorana physics.

摘要

两种不同材料之间的界面可能会展现出意想不到的量子现象。在本研究中,我们使用分子束外延技术合成了由两种磁性材料堆叠而成的异质结构,一种是铁磁拓扑绝缘体(TI),另一种是反铁磁硫族铁化物(FeTe)。我们在这些异质结构中观察到了由界面诱导产生的超导性,并证明了在磁性TI层中超导性、铁磁性和拓扑能带结构的共存——这是手性拓扑超导(TSC)的三个基本要素。铁磁性和超导性这种不寻常的共存伴随着一个较高的上临界磁场,该磁场在低温下超过了传统超导体的泡利顺磁极限。这些具有强超导性和原子级锐界面的磁性TI/FeTe异质结构为探索手性TSC和马约拉纳物理提供了一个理想的晶圆级平台。

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