Magnetoresistance calculations for a two-dimensional electron gas with unilateral short-period strong modulation
arXiv:cond-mat/0206212 · doi:10.1103/PhysRevB.66.205318
Abstract
The linear response theory is used to describe magnetoresistance oscillations of short-period unilateral superlattices with strong modulation (or alternatively arrays of coupled quantum wires). The semiclassical description of this system fails for strong magnetic fields (magnetic breakdown) and we employ a simple fully-quantum-mechanical tight-binding model in conjunction with Kubo's formula instead. The resulting magnetoresistance data nicely compare to the experiments while the model opens good intuitive insight into the effects taking place in the system.
8 pages, 8 figures, submitted to PRB
Cited by in corpus (4)
- Charge and spin dynamics driven by ultrashort extreme broadband pulses: a theory perspective
- Inverse flux quantum periodicity of magnetoresistance oscillations in two-dimensional short-period surface superlattices
- Tunable terahertz oscillations in superlattices subject to an in-plane magnetic field
- Effect of Oscillating Landau Bandwidth on the Integer Quantum Hall Effect in a Unidirectional Lateral Superlattice