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Role of the coupling laser in electromagnetically induced absorption

MPG-Autoren

Spani Molella,  Luca
Laser Interferometry & Gravitational Wave Astronomy, AEI-Hannover, MPI for Gravitational Physics, Max Planck Society;
AEI-Hannover, MPI for Gravitational Physics, Max Planck Society;

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Rinkleff,  Rolf-Hermann
Laser Interferometry & Gravitational Wave Astronomy, AEI-Hannover, MPI for Gravitational Physics, Max Planck Society;

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Danzmann,  Karsten
Laser Interferometry & Gravitational Wave Astronomy, AEI-Hannover, MPI for Gravitational Physics, Max Planck Society;

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PhysRevA_72_041802.pdf
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Zitation

Spani Molella, L., Rinkleff, R.-H., & Danzmann, K. (2005). Role of the coupling laser in electromagnetically induced absorption. Physical Review A, 72(4): 041802 (R). doi:10.1103/PhysRevA.72.041802.


Zitierlink: https://hdl.handle.net/11858/00-001M-0000-0013-4DC4-9
Zusammenfassung
The cesium D2 line closed hyperfine transition F=4F=5 was simultaneously coupled and probed in a hot atomic beam. We experimentally showed that, when the probe laser frequency approached that of the two-photon-resonance corresponding to electromagnetically induced absorption conditions, an enhanced transparency of the coupling laser appeared, combined with a further central absorption peak at zero probe laser detuning. Simultaneously, the coupling laser parametric dispersion showed a broad negative pattern together with a narrower steep positive phase shift in correspondence with the two-photon resonance, with sub-Doppler half-widths down to about 10 kHz.