Publication | Open Access
Semiclassical Dynamics of Electron Wave Packet States with Phase Vortices
336
Citations
40
References
2007
Year
Quantum DynamicEngineeringQuantum Spin IceTopological Quantum StateSpin DynamicSpin PhenomenonElectron PhysicPhase VorticesQuantum MatterQuantum SciencePhysicsWave PacketTopological PhaseSemiclassical DynamicsQuantum MagnetismVortex StrengthNatural SciencesCondensed Matter PhysicsApplied Physics
We consider semiclassical higher-order wave packet solutions of the Schrödinger equation with phase vortices. The vortex line is aligned with the propagation direction, and the wave packet carries a well-defined orbital angular momentum (OAM) variant Planck's over 2pil (l is the vortex strength) along its main linear momentum. The probability current coils around the momentum in such OAM states of electrons. In an electric field, these states evolve like massless particles with spin l. The magnetic-monopole Berry curvature appears in momentum space, which results in a spin-orbit-type interaction and a Berry/Magnus transverse force acting on the wave packet. This brings about the OAM Hall effect. In a magnetic field, there is a Zeeman interaction, which, can lead to more complicated dynamics.
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