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Multicomponent Electron-Hole Superfluidity and the BCS-BEC Crossover in Double Bilayer Graphene
S Conti1,2, A Perali1, F M Peeters2
1Dipartimenti di Fisica e di Farmacia, Università di Camerino, 62032 Camerino (MC), Italy.
Multicomponent superfluidity in bilayer graphene is explored. Optimal conditions for high-temperature superconductivity (high-T$_{c}$) were identified within the strong-pairing regime, balancing carrier density and band gap.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Quantum Phenomena
Background:
- Bilayer graphene exhibits unique electronic properties due to its coupled conduction and valence bands.
- Superfluidity, a quantum mechanical phenomenon, is being explored in novel material systems.
Purpose of the Study:
- To investigate the multicomponent superfluid crossover properties in coupled electron-hole sheets of bilayer graphene.
- To determine the influence of tunable carrier densities and energy band gap (E$_{g}$) on superfluidity.
- To identify conditions favorable for achieving high-temperature superconductivity (high-T$_{c}$).
Main Methods:
- Theoretical investigation of superfluid crossover properties.
- Analysis of the impact of varying carrier densities and energy band gaps.
- Modeling of interactions between conduction and valence bands.
Main Results:
- Superfluidity in bilayer graphene is predicted to be multicomponent.
- Small band gaps can enhance superfluid gaps but may hinder Bose-Einstein condensate (BEC) formation at low densities.
- A specific band gap range (E$_{g}$∼80-120 meV) at higher densities facilitates entry into the strong-pairing multiband BCS-BEC crossover regime.
Conclusions:
- The study identifies a critical band gap range for realizing strong-pairing superfluidity in bilayer graphene.
- These findings suggest a pathway towards achieving high-T$_{c}$ superfluidity in this material system.
- Tunable parameters offer a method to control and optimize superfluid properties.
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