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RESEARCH PRODUCT

Author Correction: Induced unconventional superconductivity on the surface states of Bi2Te3 topological insulator

Shumin WangShumin WangReza BaghdadiGunta KunakovaGunta KunakovaEva OlssonRiccardo ArpaiaFrancesco TafuriSophie CharpentierDmitry S. GolubevThilo BauchYuxin SongYuxin SongFloriana LombardiJacob LinderAlexei KalaboukhovLuca Galletti

subject

SuperconductivityPhysicsMultidisciplinaryCondensed matter physicsScienceQGeneral Physics and AstronomyOrder (ring theory)General ChemistryScattering processAstrophysics::Cosmology and Extragalactic AstrophysicsArticleGeneral Biochemistry Genetics and Molecular BiologyCondensed Matter::SuperconductivityTopological insulatorMathematics::Category TheoryArrowAstrophysics::Solar and Stellar Astrophysicslcsh:QAuthor Correctionlcsh:ScienceAstrophysics::Galaxy AstrophysicsSurface states

description

Topological superconductivity is central to a variety of novel phenomena involving the interplay between topologically ordered phases and broken-symmetry states. The key ingredient is an unconventional order parameter, with an orbital component containing a chiral p x + ip y wave term. Here we present phase-sensitive measurements, based on the quantum interference in nanoscale Josephson junctions, realized by using Bi2Te3 topological insulator. We demonstrate that the induced superconductivity is unconventional and consistent with a sign-changing order parameter, such as a chiral p x + ip y component. The magnetic field pattern of the junctions shows a dip at zero externally applied magnetic field, which is an incontrovertible signature of the simultaneous existence of 0 and π coupling within the junction, inherent to a non trivial order parameter phase. The nano-textured morphology of the Bi2Te3 flakes, and the dramatic role played by thermal strain are the surprising key factors for the display of an unconventional induced order parameter.

10.1038/s41467-018-02945-2http://link.springer.com/article/10.1038/s41467-018-02945-2