Perturbation approach for computing frequency- and time-resolved photon correlation functions
Phys. Rev. A 98, 063828 (2018) We propose an alternative formulation of the sensor method presented in [Phys. Rev. Lett 109, 183601 (2012)] for the calculation of frequency-filtered and time-resolved photon correlations. Our approach is based on an algebraic expansion of the joint steady state of qu...
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Zusammenfassung: | Phys. Rev. A 98, 063828 (2018) We propose an alternative formulation of the sensor method presented in
[Phys. Rev. Lett 109, 183601 (2012)] for the calculation of frequency-filtered
and time-resolved photon correlations. Our approach is based on an algebraic
expansion of the joint steady state of quantum emitter and sensors with respect
to the emitter-sensor coupling parameter \epsilon. This allows us to express
photon correlations in terms of the open quantum dynamics of the emitting
system only and ensures that computation of correlations are independent on the
choice of a small value of \epsilon. Moreover, using time-dependent
perturbation theory, we are able to express the frequency- and time- resolved
second-order photon correlation as the addition of three components, each of
which gives insight into the physical processes dominating the correlation at
different time scales. We consider a bio-inspired vibronic dimer model to
illustrate the agreement between the original formulation and our approach. |
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DOI: | 10.48550/arxiv.1801.08065 |