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arXiv · 1506.01996

Using magnetic stripes to stabilize superfluidity in electron-hole double monolayer graphene

Abstract

Experiments have confirmed that double monolayer graphene cannot generate finite temperature electron-hole superfluidity. This has been shown to be due to very strong screening of the electron-hole pairing attraction. The linear dispersing energy bands in monolayer graphene prevent attempts to reduce the strength of the screening. We propose a new hybrid device in which the two sheets of monolayer graphene are placed in a modulated periodic perpendicular magnetic field. Such a magnetic field preserves the isotropic Dirac cones of the original monolayers but it reduces the slope of the cones so that the monolayer Fermi velocity $v_F$ is smaller. We show that with current experimental techniques, this reduction in $v_F$ can sufficiently weaken the screening to permit electron-hole superfluidity at measurable temperatures.

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Luca Dell'Anna, Andrea Perali, Lucian Covaci, David Neilson. 2015-12-16. Using magnetic stripes to stabilize superfluidity in electron-hole double monolayer graphene. https://doi.org/10.1103/physrevb.92.220502

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