Quantum condensation in electron-hole bilayers with density imbalance
arXiv:0908.2492 · doi:10.1143/JPSJ.79.033001
Abstract
We study the two-dimensional spatially separated electron-hole system with density imbalance at absolute zero temperature. By means of the mean-field theory, we find that the Fulde-Ferrell state is fairly stabilized by the order parameter mixing effect.
5 pages, 5 figures
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- Supersolidity in electron-hole bilayers with a large density imbalance
- Superfluidity in Two-Dimensional Imbalanced Fermi Gases
- Rotons in Optical Excitation Spectra of Monolayer Semiconductors
- Excitonic Phase Diagram of the Three-Chain Hubbard Model for Semiconducting and Semimetallic TaNiSe
- Structure of exciton condensates in imbalanced electron-hole bilayers
- Crescent states in charge-imbalanced polariton condensates
- FFLO Superconductivity Mediated by Excitonic Fluctuation in Semimetallic TaNiSe