A complete laboratory for transport studies of electron-hole interactions in GaAs/AlGaAs systems
arXiv:1611.08816 · doi:10.1063/1.4976505
Abstract
We present GaAs/AlGaAs double quantum well devices that can operate as both electron-hole (e-h) and hole-hole (h-h) bilayers, with separating barriers as narrow as 5 nm or 7.5 nm. With such narrow barriers, in the h-h configuration we observe signs of magnetic-field-induced exciton condensation in the quantum Hall bilayer regime. In the same devices we can study the zero-magnetic-field e-h and h-h bilayer states using Coulomb drag. Very strong e-h Coulomb drag resistivity (up to 10% of the single layer resistivity) is observed at liquid helium temperatures, but no definite signs of exciton condensation are seen in this case. Self-consistent calculations of the electron and hole wavefunctions show this might be because the average interlayer separation is larger in the e-h case than the h-h case.
5 pages, 4 figures
References in corpus (8)
- Strong Coulomb drag and broken symmetry in double-layer graphene
- Exciton Condensation and Perfect Coulomb Drag
- Coulomb Drag in the Exciton Regime in Electron-Hole Bilayers
- Anomalous Coulomb drag in electron-hole bilayers
- Wigner supersolid of excitons in electron-hole bilayers
- Coulomb Drag and Magnetotransport in Graphene Double Layers
- Undoped Electron-Hole Bilayers in a GaAs/AlGaAs Double Quantum Well
- Phase diagram of bilayer electron-hole plasmas