Theory of polariton-electron interactions in semiconductor microcavities
arXiv:2008.09292 · doi:10.1103/PhysRevB.103.195307
Abstract
We develop a microscopic description of an electron-doped two-dimensional semiconductor embedded in a microcavity. Specifically, we investigate the interactions between exciton-polaritons and electrons for the case where the interactions between charges are strongly screened and the system is spin polarized. As a starting point, we obtain an analytic expression for the exciton-polariton wave function, and we relate the microscopic parameters of the light-matter system to experimentally measurable quantities, such as the Rabi coupling and the cavity photon frequency. We then derive the polariton-electron interaction within the standard Born approximation and compare it with the exact polariton-electron scattering matrix that we obtain from a diagrammatic approach that has proven highly successful in the context of nuclear physics and ultracold atomic gases. In particular, we show that the Born approximation provides an upper bound on the polariton-electron coupling strength at vanishing momentum. Using our exact microscopic calculation, we demonstrate that polariton-electron scattering can be strongly enhanced compared to the exciton-electron case, which is the opposite of that expected from the Born approximation. We furthermore expose a resonance-like peak at scattering momenta near the polariton inflection point, whose size is set by the strength of the light-matter coupling. Our results arise from the non-Galilean nature of the polariton system and should thus be applicable to a range of semiconductor microcavities such as GaAs quantum wells and atomically thin materials.
18 pages, 9 figures
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Cited by in corpus (14)
- Microscopic calculation of polariton scattering in semiconductor microcavities
- Enhanced scattering between electrons and exciton-polaritons in a microcavity
- Microscopic theory of exciton and trion polaritons in doped monolayers of transition metal dichalcogenides
- Effect of fermion indistinguishability on optical absorption of doped two-dimensional semiconductors
- Trion resonance in polariton-electron scattering
- Polaronic polariton quasiparticles in a dark excitonic medium
- Interplay between polarization and quantum correlations of confined polaritons
- Rydberg excitons and polaritons in monolayer transition metal dichalcogenides in a magnetic field
- Feshbach Resonances in Exciton-Charge-Carrier Scattering in Semiconductor Bilayers
- Microscopic theory of excitons bound by light
- Scattering resonances and pairing in a Rabi-coupled Fermi gas
- Quasi-equilibrium polariton condensates in the non-linear regime and beyond
- Resonantly enhanced superconductivity mediated by spinor condensates
- Light-enhanced dipolar interactions between exciton polaritons