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Phys. Rev. A 70, 013402 (2004) [14 pages]

Stabilization of ultracold molecules using optimal control theory

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Christiane P. Koch1,2,*, José P. Palao2,3, Ronnie Kosloff2, and Françoise Masnou-Seeuws1
1Laboratoire Aimé Cotton, CNRS, Bâtiment 505, Campus d’ Orsay, 91405 Orsay Cedex, France
2Department of Physical Chemistry and The Fritz Haber Research Center, The Hebrew University, Jerusalem 91904, Israel
3Departamento de Física Fundamental II, Universidad de La Laguna, La Laguna 38204, Spain

See Also: Erratum

Received 10 February 2004; published 7 July 2004

In recent experiments on ultracold matter, molecules have been produced from ultracold atoms by photoassociation, Feshbach resonances, and three-body recombination. The created molecules are translationally cold, but vibrationally highly excited. This will eventually lead them to be lost from the trap due to collisions. We propose shaped laser pulses to transfer these highly excited molecules to their ground vibrational level. Optimal control theory is employed to find the light field that will carry out this task with minimum intensity. We present results for the sodium dimer. The final target can be reached to within 99% provided the initial guess field is physically motivated. We find that the optimal fields contain the transition frequencies required by a good Franck-Condon pumping scheme. The analysis identifies the ranges of intensity and pulse duration which are able to achieve this task before any other competing processes take place. Such a scheme could produce stable ultracold molecular samples or even stable molecular Bose-Einstein condensates.

© 2004 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevA.70.013402
DOI:
10.1103/PhysRevA.70.013402
PACS:
33.80.Ps, 82.53.Kp, 34.30.+h, 33.90.+h

*Electronic address: christiane.koch@lac.u-psud.fr

See Also

Erratum: Christiane P. Koch, José P. Palao, Ronnie Kosloff, and Françoise Masnou-Seeuws, Erratum: Stabilization of ultracold molecules using optimal control theory [Phys. Rev. A 70, 013402 (2004)], Phys. Rev. A 82, 059903 (2010).