Unconventional superfluids of fermionic polar molecules in a bilayer system
arXiv:1611.01183 · doi:10.1016/j.physleta.2017.03.028
Abstract
We study unconventional superfluids of fermionic polar molecules in a two-dimensional bilayer system with dipoles are head-to-tail across the layers. We analyze the critical temperature of several unconventional pairings as a function of different system parameters. The peculiar competition between the - and the - wave pairings is discussed. We show that the experimental observation of such unconventional superfluids requires ulralow temperatures, which opens up new possibilities to realize several topological phases.
5 pages, 4 figures
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Cited by in corpus (8)
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- Interplay of interlayer pairing and many-body screening in a bilayer of dipolar fermions
- Effects of weak disorder on two-dimensional bilayered dipolar Bose-Einstein condensates
- Quantum gas of polar molecules ensembles at ultralow temperatures: f-wave superfluids
- p-wave Superfluid Phases of Fermi Molecules in a Bilayer Lattice Array
- Geometric and computational aspects of chiral topological quantum matter
- Mutual dipolar drag in a bilayer Fermi gas