Dirac-Fermion-Assisted Interfacial Superconductivity in Epitaxial Topological Insulator/Iron Chalcogenide Heterostructures
Hemian Yi, Lun-Hui Hu, Yi-Fan Zhao, Ling-Jie Zhou, Zi-Jie Yan, Ruoxi, Zhang, Wei Yuan, Zihao Wang, Ke Wang, Danielle Reifsnyder Hickey, Anthony R., Richardella, John Singleton, Laurel E. Winter, Xianxin Wu, Moses H. W. Chan,, Nitin Samarth, Chao-Xing Liu, and Cui-Zu Chang

TL;DR
This study demonstrates that Dirac fermions in topological insulator/iron chalcogenide heterostructures facilitate interfacial superconductivity, revealing a chemical potential dependence linked to Dirac electrons and magnetic interactions, advancing topological quantum computing prospects.
Contribution
It introduces a new heterostructure platform where Dirac fermions assist interfacial superconductivity, highlighting the role of magnetic interactions and chemical potential tuning.
Findings
Superconductivity is suppressed near the Dirac point.
Interfacial superconductivity is linked to Dirac surface states.
Magnetic interactions influence the superconducting properties.
Abstract
Over the last decade, the possibility of realizing topological superconductivity (TSC) has generated much excitement, mainly due to the potential use of its excitations (Majorana zero modes) in a fault-tolerant topological quantum computer 1,2. TSC can be created in electronic systems where the topological and superconducting orders coexist3, motivating the continued exploration of candidate material platforms to this end. Here, we use molecular beam epitaxy (MBE) to synthesize heterostructures that host emergent interfacial superconductivity when a non-superconducting antiferromagnet (FeTe) is interfaced with a topological insulator (TI) (Bi, Sb)2Te3 wherein the chemical potential can be tuned through varying the Bi/Sb ratio. By performing in-vacuo angle-resolved photoemission spectroscopy (ARPES) and ex-situ electrical transport measurements, we find that the superconducting…
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Taxonomy
TopicsTopological Materials and Phenomena · Advanced Condensed Matter Physics · Electronic and Structural Properties of Oxides
