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The dressed atom revisited: Hamiltonian-independent treatment of the radiative cascade

Repozytorium Uniwersytetu Mikołaja Kopernika

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dc.contributor.author Pepe, Francesco V.
dc.contributor.author Słowik, Karolina
dc.date.accessioned 2024-09-02T19:55:45Z
dc.date.available 2024-09-02T19:55:45Z
dc.date.issued 2024
dc.identifier.citation Physical Review Letters 133, 2023, 083603
dc.identifier.other https://doi.org/10.1103/PhysRevLett.133.083603
dc.identifier.uri http://repozytorium.umk.pl/handle/item/7049
dc.description Preprint artykułu
dc.description.abstract The dressed atom approach provides a tool to investigate the dynamics of an atom-laser system by fully retaining the quantum nature of the coherent mode. In its standard derivation, the internal atom-laser evolution is described within the rotating-wave approximation, which determines a doublet structure of the spectrum and the peculiar fluorescence triplet in the steady state. However, the rotating wave approximation may fail to apply to atomic systems subject to femtosecond light pulses, light-matter systems in the strong-coupling regime or sustaining permanent dipole moments. This work aims to demonstrate how the general features of the steady-state radiative cascade are affected by the interaction of the dressed atom with propagating radiation modes. Rather than focusing on a specific model, we analyze how these features depend on the parameters characterizing the dressed eigenstates in arbitrary atom-laser dynamics, given that a set of general hypotheses is satisfied. Our findings clarify the general conditions in which a description of the radiative cascade in terms of transition between dressed states is self-consistent. We provide a guideline to determine the properties of photon emission for any atom-laser interaction model, which can be particularly relevant when the model should be tailored to enhance a specific line. We apply the general results to the case in which a permanent dipole moment is a source of low-energy emission, whose frequency is of the order of the Rabi coupling.
dc.description.sponsorship National Science Centre, Poland (Project No. 2020/39/I/ST3/00526)
dc.language.iso eng
dc.publisher American Physical Society
dc.rights Attribution 4.0 Poland
dc.rights.uri https://creativecommons.org/licenses/by/4.0/deed.pl
dc.subject Atomic & molecular processes in external fields
dc.subject Atoms, ions, & molecules in cavities
dc.subject Cavity quantum electrodynamics
dc.subject Effects of atomic coherence on light propagation
dc.subject Light propagation, transmission & absorption
dc.subject Light-matter interaction
dc.subject Optics & lasers
dc.subject Photon statistics
dc.subject Quantum description of light-matter interaction
dc.subject Quantum optics
dc.subject Spontaneous emission
dc.subject Atoms
dc.subject Laser systems
dc.subject Dipole approximation
dc.subject Schroedinger equation
dc.subject First principle calculations
dc.subject Two-level models
dc.title The dressed atom revisited: Hamiltonian-independent treatment of the radiative cascade
dc.type info:eu-repo/semantics/article


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Attribution 4.0 Poland Ta pozycja jest udostępniona na licencji Attribution 4.0 Poland