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Propagation of optically tunable coherent radiation in a gas of polar molecules

Authors :
Gładysz, Piotr
Wcisło, Piotr
Słowik, Karolina
Source :
Gladysz, P., Wcislo, P. & Slowik, K. Sci Rep 10, 17615 (2020)
Publication Year :
2020

Abstract

Coherent, optically dressed media composed of two-level molecular systems without inversion symmetry are considered as all-optically tunable sources of coherent radiation in the microwave domain. A theoretical model and a numerical toolbox are developed to confirm the main finding: the generation of a low-frequency radiation, and the buildup and propagation dynamics of such low-frequency signals in a medium of polar molecules in a gas phase. The physical mechanism of the signal generation relies on the permanent dipole moment characterizing systems without inversion symmetry. The molecules are polarized with a DC electric field yielding a permanent electric dipole moment in the laboratory frame; the direction and magnitude of the moment depend on the molecular state. As the system is resonantly driven, the dipole moment oscillates at the Rabi frequency and, hence, generates microwave radiation. We demonstrate the tuning capability of the output signal frequency with the drive amplitude and detuning. We find that even though decoherence mechanisms such as spontaneous emission may damp the output field, a scenario based on pulsed illumination yields a coherent, pulsed output of tunable temporal width. Finally, we discuss experimental scenarios exploiting rotational levels of gaseous ensembles of heteronuclear diatomic molecules.<br />Comment: 12 pages, 6 figures

Subjects

Subjects :
Quantum Physics
Physics - Optics

Details

Database :
arXiv
Journal :
Gladysz, P., Wcislo, P. & Slowik, K. Sci Rep 10, 17615 (2020)
Publication Type :
Report
Accession number :
edsarx.2002.05469
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s41598-020-74569-w