Strongly entangled system-reservoir dynamics with multiphoton pulses
beyond the two-excitation limit: Exciting the atom-photon bound state
- URL: http://arxiv.org/abs/2011.03769v3
- Date: Wed, 3 Mar 2021 21:25:04 GMT
- Title: Strongly entangled system-reservoir dynamics with multiphoton pulses
beyond the two-excitation limit: Exciting the atom-photon bound state
- Authors: Kisa Barkemeyer, Andreas Knorr, and Alexander Carmele
- Abstract summary: We study the non-Markovian feedback dynamics of a two-level system interacting with the electromagnetic field inside a semi-infinite waveguide.
We compare the trapped excitation for an initially excited quantum emitter and an emitter prepared via quantized pulses containing up to four photons.
- Score: 62.997667081978825
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Within the matrix product state framework, we study the non-Markovian
feedback dynamics of a two-level system interacting with the electromagnetic
field inside a semi-infinite waveguide where the excitation of an atom-photon
bound state is possible. Taking the steady-state excitation of the emitter as a
figure of merit, we compare the trapped excitation for an initially excited
quantum emitter and an emitter prepared via quantized pulses containing up to
four photons. In the latter case, we find that for large feedback delay times,
multi-photon pulses can yield a significantly higher steady-state excitation
than possible with an initially excited emitter since the stimulated emission
process can enhance the trapping probability in comparison to the spontaneous
decay of an initially excited emitter.
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