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Klein backscattering and Fabry-Pérot interference in graphene heterojunctions
Andrei V Shytov1, Mark S Rudner, Leonid S Levitov
1Department of Physics, University of Utah, Salt Lake City, Utah 84112, USA.
Physical Review Letters
|November 13, 2008
Summary
Quantum-coherent transport in graphene
Area of Science:
- Condensed matter physics
- Quantum mechanics
- Materials science
Background:
- Graphene's unique electronic properties, including the Klein phenomenon, enable novel quantum transport phenomena.
- Understanding quantum-coherent transport in lateral p-n-p structures is crucial for next-generation electronic devices.
Purpose of the Study:
- To theoretically investigate quantum-coherent transport in a graphene lateral p-n-p structure.
- To elucidate the role of Klein scattering and magnetic fields on interference patterns.
Main Methods:
- Development of a theoretical framework for quantum-coherent transport.
- Analysis of forward and backward scattering at p-n interfaces.
- Inclusion of the Klein phenomenon's effect on backreflection amplitude.
Main Results:
- The Klein phenomenon introduces a phase shift in interference fringes.
- A magnetic field breaks the symmetry of interference contributions from p-n interfaces.
- A half-period shift in Fabry-Pérot fringes is observed at finite magnetic fields.
Conclusions:
- A weak magnetic field can induce a detectable signature of Klein scattering in graphene.
- The observed effect is robust against moderate spatial potential inhomogeneity.

