1] William Mong Institute of Nano Science and Technology, the Hong Kong University of Science and Technology, Hong Kong, China [2] Nano Science and Technology Program, the Hong Kong University of Science and Technology, Hong Kong, China [3].
1] Department of Physics, the Hong Kong University of Science and Technology, Hong Kong, China [2].
Nat Commun. 2014 Jun 23;5:4247. doi: 10.1038/ncomms5247.
The realization of superconductivity at the interface between a topological insulator and an iron-chalcogenide compound is highly attractive for exploring several recent theoretical predictions involving these two new classes of materials. Here we report transport measurements on a Bi2Te3/FeTe heterostructure fabricated via van der Waals epitaxy, which demonstrate superconductivity at the interface, which is induced by the Bi2Te3 epilayer with thickness even down to one quintuple layer, though there is no clear-cut evidence that the observed superconductivity is induced by the topological surface states. The two-dimensional nature of the observed superconductivity with the highest transition temperature around 12 K was verified by the existence of a Berezinsky-Kosterlitz-Thouless transition and the diverging ratio of in-plane to out-plane upper critical field on approaching the superconducting transition temperature. With the combination of interface superconductivity and Dirac surface states of Bi2Te3, the heterostructure studied in this work provides a novel platform for realizing Majorana fermions.
在拓扑绝缘体和铁-硫族化合物的界面实现超导对于探索涉及这两种新型材料的几个最近的理论预测非常有吸引力。在这里,我们报告了通过范德华外延制备的 Bi2Te3/FeTe 异质结构的输运测量结果,该结果表明界面存在超导性,这是由 Bi2Te3 外延层诱导的,即使外延层的厚度仅为一个五倍层,尽管没有明确的证据表明观察到的超导性是由拓扑表面态引起的。观察到的超导性的二维性质,最高转变温度约为 12 K,这是通过 Berezinsky-Kosterlitz-Thouless 转变和在接近超导转变温度时平面到平面上临界场的发散比得到证实的。结合界面超导性和 Bi2Te3 的狄拉克表面态,这项研究工作中的异质结构为实现马约拉纳费米子提供了一个新的平台。