Influence of electron-acoustic phonon scattering on intensity power broadening in a coherently driven quantum-dot cavity system
Chiranjeeb Roy, Stephen Hughes

TL;DR
This paper develops a nonperturbative quantum optics formalism to analyze how electron-acoustic phonon interactions affect power broadening in a coherently driven quantum-dot cavity system, revealing phonon-induced features in photoluminescence lineshapes.
Contribution
It introduces a full non-Lorentzian PL lineshape calculation and an effective phonon Lindblad master equation for semiconductor cavity-QED systems, capturing phonon effects accurately.
Findings
Phonon interactions cause distinct features in PL lineshapes.
Exciton-phonon reservoir excitation leads to different PL characteristics.
The effective phonon master equation reproduces full PL results well.
Abstract
We present a quantum optics formalism to study intensity power broadening of a semiconductor quantum dot interacting with an acoustic phonon bath and a high microcavity. Power broadening is investigated using a time-convolutionless master equation in the polaron frame which allows for a nonperturbative treatment of the interaction of the quantum dot with the phonon reservoir. We calculate the full non-Lorentzian photoluminescence (PL) lineshapes and numerically extract the intensity linewidths of the quantum dot exciton and the cavity mode as a function of pump rate and temperature. For increasing field strengths, multiphonon and multiphoton effects are found to be important, even for phonon bath temperatures as low as 4 K. We show that the interaction of the quantum dot with the phonon reservoir introduces pronounced features in the power broadened PL lineshape, enabling one to…
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