Literature DB >> 27232038

Transition from Sign-Reversed to Sign-Preserved Cooper-Pairing Symmetry in Sulfur-Doped Iron Selenide Superconductors.

Qisi Wang1, J T Park2, Yu Feng1, Yao Shen1, Yiqing Hao1, Bingying Pan1, J W Lynn3, A Ivanov4, Songxue Chi5, M Matsuda5, Huibo Cao5, R J Birgeneau6,7, D V Efremov8, Jun Zhao1,9.   

Abstract

An essential step toward elucidating the mechanism of superconductivity is to determine the sign or phase of the superconducting order parameter, as it is closely related to the pairing interaction. In conventional superconductors, the electron-phonon interaction induces attraction between electrons near the Fermi energy and results in a sign-preserved s-wave pairing. For high-temperature superconductors, including cuprates and iron-based superconductors, prevalent weak coupling theories suggest that the electron pairing is mediated by spin fluctuations which lead to repulsive interactions, and therefore that a sign-reversed pairing with an s_{±} or d-wave symmetry is favored. Here, by using magnetic neutron scattering, a phase sensitive probe of the superconducting gap, we report the observation of a transition from the sign-reversed to sign-preserved Cooper-pairing symmetry with insignificant changes in T_{c} in the S-doped iron selenide superconductors K_{x}Fe_{2-y}(Se_{1-z}S_{z})_{2}. We show that a rather sharp magnetic resonant mode well below the superconducting gap (2Δ) in the undoped sample (z=0) is replaced by a broad hump structure above 2Δ under 50% S doping. These results cannot be readily explained by simple spin fluctuation-exchange pairing theories and, therefore, multiple pairing channels are required to describe superconductivity in this system. Our findings may also yield a simple explanation for the sometimes contradictory data on the sign of the superconducting order parameter in iron-based materials.

Entities:  

Year:  2016        PMID: 27232038     DOI: 10.1103/PhysRevLett.116.197004

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  1 in total

1.  Probing pairing symmetry in multi-band superconductors by quasiparticle interference.

Authors:  A Dutt; A A Golubov; D V Efremov; O V Dolgov
Journal:  Sci Rep       Date:  2018-08-02       Impact factor: 4.379

  1 in total

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