Frictional magneto-Coulomb drag in graphene double-layer heterostructure
arXiv:1612.08308 · doi:10.1103/PhysRevLett.119.056802
Abstract
Coulomb interaction between two closely spaced parallel layers of electron system can generate the frictional drag effect by interlayer Coulomb scattering. Employing graphene double layers separated by few layer hexagonal boron nitride (hBN), we investigate density tunable magneto- and Hall-drag under strong magnetic fields. The observed large magneto-drag and Hall-drag signals can be related with Laudau level (LL) filling status of the drive and drag layers. We find that the sign and magnitude of the magneto- and Hall-drag resistivity tensor can be quantitatively correlated to the variation of magneto-resistivity tensors in the drive and drag layers, confirming a theoretical formula for magneto-drag in the quantum Hall regime. The observed weak temperature dependence and dependence of the magneto-drag are qualitatively explained by Coulomb scattering phase-space argument.
5 pages, 3 figures
References in corpus (1)
Cited by in corpus (11)
- Spin-polarized Correlated Insulator and Superconductor in Twisted Double Bilayer Graphene
- Crossover between Strongly-coupled and Weakly-coupled Exciton Superfluids
- Band filling and cross quantum capacitance in ion gated semiconducting transition metal dichalcogenide monolayers
- Time-Reversal Even Charge Hall Effect from Twisted Interface Coupling
- Coulomb Drag between a Carbon Nanotube and Monolayer Graphene
- Magnetodrag in hydrodynamic regime: effects of magnetoplasmon resonance and Hall viscosity
- Coulomb drag between a carbon nanotube and monolayer graphene
- Coulomb drag and heat transfer in strange metals
- Magneto-Coulomb Drag and Hall Drag in Double-Layer Dirac Systems
- Layer-Resolved Quantum Transport in Twisted Bilayer Graphene: Counterflow and Machine Learning Predictions
- Near-field heat transfer and drag resistance in bilayers of composite fermions