Theory of Landau level mixing in heavily graded graphene p-n junctions
arXiv:1608.00894 · doi:10.1103/PhysRevB.94.165312
Abstract
We demonstrate the use of a quantum transport model to study heavily graded graphene p-n junctions in the quantum Hall regime. A combination of p-n interface roughness and delta function disorder potential allows us to compare experimental results on different devices from the literature. We find that wide p-n junctions suppress mixing of Landau levels. Our simulations spatially resolve carrier transport in the device, for the first time, revealing separation of higher order Landau levels in strongly graded junctions, which suppresses mixing.
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- Manipulating quantum Hall edge channels in graphene through Scanning Gate Microscopy
- Interplay of filling fraction and coherence in symmetry broken graphene p-n junction
- Geometric interference in a high-mobility graphene annulus p-n junction device
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