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Superconducting pairing of topological surface states in bismuth selenide films on niobium
Author(s) -
David Flötotto,
Y. Ota,
Yang Bai,
Can Zhang,
Kozo Okazaki,
Akihiro Tsuzuki,
Takahiro Hashimoto,
J. N. Eckstein,
Shik Shin,
T.C. Chiang
Publication year - 2018
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aar7214
Subject(s) - topological insulator , angle resolved photoemission spectroscopy , surface states , superconductivity , photoemission spectroscopy , pairing , condensed matter physics , topology (electrical circuits) , niobium , materials science , electronic structure , surface (topology) , physics , spectral line , quantum mechanics , geometry , mathematics , combinatorics , metallurgy
A topological insulator film coupled to a simple isotropic s-wave superconductor substrate can foster helical pairing of the Dirac fermions associated with the topological surface states. Experimental realization of such a system is exceedingly difficult, however using a novel "flip-chip" technique, we have prepared single-crystalline BiSe films with predetermined thicknesses in terms of quintuple layers (QLs) on top of Nb substrates fresh from in situ cleavage. Our angle-resolved photoemission spectroscopy (ARPES) measurements of the film surface disclose superconducting gaps and coherence peaks of similar magnitude for both the topological surface states and bulk states. The ARPES spectral map as a function of temperature and film thickness up to 10 QLs reveals key characteristics relevant to the mechanism of coupling between the topological surface states and the superconducting Nb substrate; the effective coupling length is found to be much larger than the decay length of the topological surface states.

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