Coherence-mediated squeezing of cavity field coupled to a coherently driven single quantum dot
arXiv:2107.03849 · doi:10.1103/PhysRevA.105.033710
Abstract
Coherence has been remaining a key resource for numerous applications of quantum physics ranging from quantum metrology to quantum information. Here, we report a theoretical work on how maximally created coherence results in the squeezing of cavity field coupled to a coherently driven single quantum dot. We employ a recently developed polaron master equation theory for accurately incorporating the impact of exciton-phonon coupling on squeezing.
11 pages, 5 figures
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