Effects of Rashba spin-orbit coupling, Zeeman splitting and gyrotropy in two-dimensional cavity polaritons under the influence of the Landau quantization
Sveatoslav A. Moskalenko, Igor V. Podlesny, Evgheni V. Dumanov and, Michael A. Liberman

TL;DR
This paper investigates the complex interactions of Landau quantization, Rashba spin-orbit coupling, Zeeman splitting, and gyrotropy effects in two-dimensional cavity polaritons within GaAs quantum wells, revealing how magnetic fields influence polariton properties.
Contribution
It provides exact solutions for eigenfunctions and eigenenergies considering multiple spin-orbit and magnetic effects, and derives a comprehensive energy spectrum for cavity magnetoexciton-polaritons.
Findings
Rabi frequency and oscillator strength increase with magnetic field strength.
Optical gyrotropy effects depend on photon polarization and wave vector sign.
Derived a fifth-order dispersion equation for the energy spectrum.
Abstract
GaAs-type quantum wells (QWs) with p-type valence band embedded into the resonators. The Landau quantization of the electrons and heavy-holes (hh) was investigated taking into account the Rashba spin-orbit coupling with third-order chirality terms for hh and with nonparabolicity terms in their dispersion low including the Zeeman splitting (ZS) effects. The exact solutions for the eigenfunctions and eigenenergies were obtained using the Rashba method [1]. We derive in the second quantization representation the Hamiltonians describing the Coulomb electron-electron and the electron-radiation interactions and determine the magnetoexciton energy branches and the magnetoexciton-photon interaction. The fifth order dispersion equation describing the energy spectrum of the cavity magnetoexciton-polariton is investigated. It takes into account the interaction of the cavity photons with two…
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