Enhanced scattering between electrons and exciton-polaritons in a microcavity
arXiv:2008.09281 · doi:10.1103/PhysRevLett.126.197401
Abstract
The interplay between strong light-matter interactions and charge doping represents an important frontier in the pursuit of exotic many-body physics and optoelectronics. Here, we consider a simplified model of a two-dimensional semiconductor embedded in a microcavity, where the interactions between electrons and holes are strongly screened, allowing us to develop a diagrammatic formalism for this system with an analytic expression for the exciton-polariton propagator. We apply this to the scattering of spin-polarized polaritons and electrons, and show that this is strongly enhanced compared with exciton-electron interactions. As we argue, this counter-intuitive result is a consequence of the shift of the collision energy due to the strong light-matter coupling, and hence this is a generic feature that applies also for more realistic electron-hole and electron-electron interactions. We furthermore demonstrate that the lack of Galilean invariance inherent in the light-matter coupled system can lead to a narrow resonance-like feature for polariton-electron interactions close to the polariton inflection point. Our results are potentially important for realizing tunable light-mediated interactions between charged particles.
7 pages, 3 figures
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Cited by in corpus (12)
- Theory of polariton-electron interactions in semiconductor microcavities
- Microscopic calculation of polariton scattering in semiconductor microcavities
- 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
- Finite-temperature Hatree-Fock-Bogoliubov theory for exciton-polaritons
- Efficient calculation of trion energies in monolayer transition metal dichalcogenides
- Interplay between polarization and quantum correlations of confined polaritons
- Superfluid drag between excitonic polaritons and superconducting electron gas
- Quasi-equilibrium polariton condensates in the non-linear regime and beyond
- Light-enhanced dipolar interactions between exciton polaritons