English

Synthesizing Coulombic superconductivity in van der Waals bilayers

Superconductivity 2018-09-26 v1 Mesoscale and Nanoscale Physics

Abstract

Synthesizing a polarizable environment surrounding a low-dimensional metal to generate superconductivity is a simple theoretical idea that still awaits a convincing experimental realization. The challenging requirements are satisfied in a metallic bilayer when the ratio between the Fermi velocities is small and both metals have a similar, low carrier density. In this case, the slower electron gas acts as a retarded polarizable medium (a "dielectric" environment) for the faster metal. Here we show that this concept is naturally optimized for the case of an atomically thin bilayer consisting of a Dirac semimetal (e.g. graphene) placed in atomic-scale proximity to a doped semiconducting transition metal dichalcogenide (e.g. WSe2_2). The superconducting transition temperature that arises from the dynamically screened Coulomb repulsion is computed using the linearized Eliashberg equation. In the case of graphene on WSe2_2, we find that TcT_c can exceed 100 mK, and it increases further when the Dirac valley degeneracy is reduced. Thus, we argue that suspended van der Waals bilayers are in a unique position to realize experimentally this long anticipated theoretical concept.

Keywords

Cite

@article{arxiv.1804.04148,
  title  = {Synthesizing Coulombic superconductivity in van der Waals bilayers},
  author = {Valla Fatemi and Jonathan Ruhman},
  journal= {arXiv preprint arXiv:1804.04148},
  year   = {2018}
}