Femtosecond two-photon photoassociation of hot magnesium atoms: a quantum dynamical study using thermal random phase wavefunctions

Two-photon photoassociation of hot magnesium atoms by femtosecond laser pulses, creating electronically excited magnesium dimer molecules, is studied from first principles, combining ab initio quantum chemistry and molecular quantum dynamics. This theoretical framework allows for rationalizing the g...

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Veröffentlicht in:The Journal of chemical physics 2013-10, Vol.139 (16), p.164124-164124
Hauptverfasser: Amaran, Saieswari, Kosloff, Ronnie, Tomza, Michał, Skomorowski, Wojciech, Pawłowski, Filip, Moszynski, Robert, Rybak, Leonid, Levin, Liat, Amitay, Zohar, Berglund, J Martin, Reich, Daniel M, Koch, Christiane P
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Sprache:eng
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Zusammenfassung:Two-photon photoassociation of hot magnesium atoms by femtosecond laser pulses, creating electronically excited magnesium dimer molecules, is studied from first principles, combining ab initio quantum chemistry and molecular quantum dynamics. This theoretical framework allows for rationalizing the generation of molecular rovibrational coherence from thermally hot atoms [L. Rybak, S. Amaran, L. Levin, M. Tomza, R. Moszynski, R. Kosloff, C. P. Koch, and Z. Amitay, Phys. Rev. Lett. 107, 273001 (2011)]. Random phase thermal wavefunctions are employed to model the thermal ensemble of hot colliding atoms. Comparing two different choices of basis functions, random phase wavefunctions built from eigenstates are found to have the fastest convergence for the photoassociation yield. The interaction of the colliding atoms with a femtosecond laser pulse is modeled non-perturbatively to account for strong-field effects.
ISSN:0021-9606
1089-7690
DOI:10.1063/1.4826350