Bose-Einstein condensate-mediated superconductivity in graphene

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Abstract

We propose a mechanism for robust Bardeen-Cooper-Schrieffer-like superconductivity in graphene placed in the vicinity of a Bose-Einstein condensate. Electrons in the graphene interact with the excitations above the condensate, called Bogoliubov quasiparticles (or bogolons). It turns out that bogolon-pair-mediated interaction allows us to surpass the long-standing problem of the vanishing density of states of particles with a linear spectrum. This results in a dramatic enhancement of the superconducting properties of graphene while keeping its relativistic dispersion. We study the behavior of the superconducting gap and calculate critical temperatures in cases with single-bogolon and bogolon-pair-mediated pairing processes, accounting for the complex band structure of graphene. We also compare the critical temperature of the superconducting transition with the BKT temperature.

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Sun, M., Parafilo, A. V., Villegas, K. H. A., Kovalev, V. M., & Savenko, I. G. (2021). Bose-Einstein condensate-mediated superconductivity in graphene. 2D Materials, 8(3). https://doi.org/10.1088/2053-1583/ac0b49

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