Dark resonances for ground state transfer of molecular quantum gases

One possible way to produce ultracold, high-phase-space-density quantum gases of molecules in the rovibronic ground state is given by molecule association from quantum-degenerate atomic gases on a Feshbach resonance and subsequent coherent optical multi-photon transfer into the rovibronic ground sta...

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Veröffentlicht in:arXiv.org 2008-11
Hauptverfasser: Mark, Manfred J, Danzl, Johann G, Haller, Elmar, Gustavsson, Mattias, Bouloufa, Nadia, Dulieu, Olivier, Salami, Houssam, Bergeman, Tom, Ritsch, Helmut, Hart, Russell, Hanns-Christoph Nägerl
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Sprache:eng
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Zusammenfassung:One possible way to produce ultracold, high-phase-space-density quantum gases of molecules in the rovibronic ground state is given by molecule association from quantum-degenerate atomic gases on a Feshbach resonance and subsequent coherent optical multi-photon transfer into the rovibronic ground state. In ultracold samples of Cs_2 molecules, we observe two-photon dark resonances that connect the intermediate rovibrational level |v=73,J=2> with the rovibrational ground state |v=0,J=0> of the singlet \(X^1\Sigma_g^+\) ground state potential. For precise dark resonance spectroscopy we exploit the fact that it is possible to efficiently populate the level |v=73,J=2> by two-photon transfer from the dissociation threshold with the stimulated Raman adiabatic passage (STIRAP) technique. We find that at least one of the two-photon resonances is sufficiently strong to allow future implementation of coherent STIRAP transfer of a molecular quantum gas to the rovibrational ground state |v=0,J=0>.
ISSN:2331-8422
DOI:10.48550/arxiv.0811.0695