Goos-Hänchen-like shifts at metal/superconductor interface
arXiv:1803.09434 · doi:10.1103/PhysRevB.98.075151
Abstract
At a normal-metal/superconductor interface, an incident electron from the normal-metal (N) side can be normally reflected as an electron or Andreev reflected as a hole. We show that pronounced lateral shifts along the interface between the incident and the reflected quasiparticles can happen in both reflection processes, which are analogous to the Goos-Hänchen effect in optics. Two concrete model systems are considered. For the simplest model in which the N side is of the two-dimensional electron gas, we find that while the shift in Andreev reflection stays positive, the shift in normal reflection can be made either positive or negative, depending on the excitation energy. For the second model with the N side taken by graphene, the shift in Andreev reflection can also be made negative, and the shifts have rich behavior due to the additional sublattice pseudospin degree of freedom. We show that the shift strongly modifies the dispersion for the confined waveguide modes in an SNS structure. We also suggest a possible experimental setup for detecting the shift.
9 pages, 8 figures
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Cited by in corpus (6)
- Quantized Circulation of Anomalous Shift in Interface Reflection
- Super-Andreev reflection and longitudinal shift of pseudospin-one fermions
- Anomalous spatial shifts in interface electronic scattering
- Electron beam splitting at topological insulator surface states and a proposal for electronic Goos-Hanchen shift measurement
- Scattering of relativistic electrons and analogies with optical phenomena: A study of longitudinal and transverse shifts at step potentials
- Enhanced Andreev Reflection in Flat-Band Systems: Wave Packet Dynamics, DC Transport and the Josephson Effect