Yi Hemian, Hu Lun-Hui, Zhao Yi-Fan, Zhou Ling-Jie, Yan Zi-Jie, Zhang Ruoxi, Yuan Wei, Wang Zihao, Wang Ke, Hickey Danielle Reifsnyder, Richardella Anthony R, Singleton John, Winter Laurel E, Wu Xianxin, Chan Moses H W, Samarth Nitin, Liu Chao-Xing, Chang Cui-Zu
Department of Physics, The Pennsylvania State University, University Park, PA, 16802, USA.
Department of Physics and Astronomy, The University of Tennessee, Knoxville, TN, 37996, USA.
Nat Commun. 2023 Nov 6;14(1):7119. doi: 10.1038/s41467-023-42902-2.
Over the last decade, the possibility of realizing topological superconductivity (TSC) has generated much excitement. TSC can be created in electronic systems where the topological and superconducting orders coexist, 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)Te. By performing in-vacuo angle-resolved photoemission spectroscopy (ARPES) and ex-situ electrical transport measurements, we find that the superconducting transition temperature and the upper critical magnetic field are suppressed when the chemical potential approaches the Dirac point. We provide evidence to show that the observed interfacial superconductivity and its chemical potential dependence is the result of the competition between the Ruderman-Kittel-Kasuya-Yosida-type ferromagnetic coupling mediated by Dirac surface states and antiferromagnetic exchange couplings that generate the bicollinear antiferromagnetic order in the FeTe layer.
在过去十年中,实现拓扑超导(TSC)的可能性引发了诸多关注。TSC可在拓扑序和超导序共存的电子系统中产生,这推动了为此目的对候选材料平台的持续探索。在此,我们使用分子束外延(MBE)来合成异质结构,当非超导反铁磁体(FeTe)与拓扑绝缘体(TI)(Bi,Sb)Te形成界面时,该异质结构会呈现出新兴的界面超导性。通过进行真空角分辨光电子能谱(ARPES)和非原位电输运测量,我们发现当化学势接近狄拉克点时,超导转变温度和上临界磁场会受到抑制。我们提供证据表明,观察到的界面超导性及其对化学势的依赖性是由狄拉克表面态介导的Ruderman-Kittel-Kasuya-Yosida型铁磁耦合与在FeTe层中产生双共线反铁磁序的反铁磁交换耦合之间竞争的结果。