On dualities of paired quantum Hall bilayer states at
arXiv:2402.14088 · doi:10.1103/PhysRevLett.133.156502
Abstract
Density-balanced, widely separated quantum Hall bilayers at can be described as two copies of composite Fermi liquids (CFLs). The two CFLs have interlayer weak-coupling BCS instabilities mediated by gauge fluctuations, the resulting pairing symmetry of which depends on the CFL hypothesis used. If both layers are described by the conventional Halperin-Lee-Read (HLR) theory-based composite electron liquid (CEL), the dominant pairing instability is in the channel; whereas if one layer is described by CEL and the other by a composite hole liquid (CHL, in the sense of anti-HLR), the dominant pairing instability occurs in the -wave channel. Using the Dirac composite fermion (CF) picture, we show that these two pairing channels can be mapped onto each other by particle-hole (PH) transformation. Furthermore, we derive the CHL theory as the non-relativistic limit of the PH-transformed massive Dirac CF theory. Finally, we prove that an effective topological field theory for the paired CEL-CHL in the weak-coupling limit is equivalent to the exciton condensate phase in the strong-coupling limit.
6+7 pages; 1+5 figures
References in corpus (10)
- Superconducting proximity effect and Majorana fermions at the surface of a topological insulator
- A Duality Web in 2+1 Dimensions and Condensed Matter Physics
- Crossover between Strongly-coupled and Weakly-coupled Exciton Superfluids
- Paired composite fermion phase of quantum Hall bilayers at ν= 1/2 + 1/2
- Trial Wavefunctions for ν= 1/2 + 1/2 Quantum Hall Bilayers
- Composite fermion duality for half-filled multicomponent Landau Levels
- -wave paired composite-fermion electron-hole trial state for quantum Hall bilayers with
- Dipole representation of half-filled Landau level
- Pairing of Composite-Electrons and Composite-Holes in Quantum Hall Bilayers
- Quantum Hall bilayer in dipole representation