Effect of parallel magnetic field on the Zero Differential Resistance State
arXiv:0807.4944 · doi:10.1103/PhysRevB.78.153311
Abstract
The non-linear zero-differential resistance state (ZDRS) that occurs for highly mobile two-dimensional electron systems in response to a dc bias in the presence of a strong magnetic field applied perpendicular to the electron plane is suppressed and disappears gradually as the magnetic field is tilted away from the perpendicular at fixed filling factor . Good agreement is found with a model that considers the effect of the Zeeman splitting of Landau levels enhanced by the in-plane component of the magnetic field.
4 pages, 4 figures
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Cited by in corpus (4)
- Mechanisms of the microwave photoconductivity in 2D electron systems with mixed disorder
- Role of electron-electron interactions in nonlinear transport in 2D electron systems
- Nonlinear resistance of 2D electrons in crossed electric and magnetic fields
- Theory of the microwave-induced photocurrent and photovoltage magnetooscillations in a spatially non-uniform 2D electron gas