Influence of Disorder on Electron-Hole Pair Condensation in Graphene Bilayers
arXiv:0808.1310 · doi:10.1103/PhysRevLett.101.256406
Abstract
Graphene bilayers can condense into a state with spontaneous interlayer phase coherence that supports dissipationless counterflow supercurrents. Here we address the influence of disorder on the graphene bilayer mean-field and Kosterlitz-Thouless critical temperatures and report on a simple criteria for the survival of pair condensation.
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- Enhancement of electron-hole superfluidity in double few-layer graphene
- Spatially-indirect Exciton Condensate Phases in Double Bilayer Graphene
- Density fluctuation effects on the exciton condensate in double layer graphene
- Strain Disorder and Gapless Intervalley Coherent Phase in Twisted Bilayer Graphene
- Phases of the excitonic condensate in two-layer graphene
- Superfluidity of dipolar excitons in a double layer of with a mass term