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Phonon-mediated intrinsic topological superconductivity in Fermi arcs

Kristian Mæland, Masoud Bahari, Björn Trauzettel

DOI 10.1103/47vs-qgzk · Physical Review B

T1

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Abstract

We propose that phonons can intrinsically mediate topological superconductivity on the surface of Weyl semimetals. Weyl semimetals are gapless topological materials with nondegenerate zero-energy-surface states known as Fermi arcs. We derive the phonon spectrum and electron-phonon coupling in an effective model of a Weyl semimetal and apply weak-coupling Bardeen-Cooper-Schrieffer theory of superconductivity. In a slab geometry, we find that surface superconductivity dominates over bulk superconductivity in a range of chemical potentials around the Weyl nodes. The superconducting gap function realizes spinless chiral p-wave Cooper pairing in the Fermi arcs, leading to Majorana bound states in the core of vortices. Furthermore, we find a suppression of the absolute value of the gap in the center of the Fermi arcs, which is not captured by a local Hubbard attraction. The suppression is due to the nonlocal origin of electron-phonon coupling, leading to a layer dependence which has important consequences for topological surface states.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
PtBi2

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19.7Pressure not reportedonset
PtBi2

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—Pressure not reportedunknown
MoTe2

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—Pressure not reportedunknown
TaIrTe4

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—Pressure not reportedunknown

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