AI Article Synopsis

  • - The study explores superconductivity at the interface of a topological insulator (Bi2Te3) and an iron-chalcogenide (FeTe), revealing that superconductivity occurs even with a very thin Bi2Te3 layer.
  • - Evidence suggests the observed superconductivity is two-dimensional, with a maximum transition temperature of about 12 K and characteristics indicating a Berezinsky-Kosterlitz-Thouless transition.
  • - This research highlights the potential for creating Majorana fermions in this heterostructure, combining interface superconductivity with Dirac surface states.

Article Abstract

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.

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Source
http://dx.doi.org/10.1038/ncomms5247DOI Listing

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