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      Classical fields approximation for bosons at nonzero temperatures

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          Emergence of a molecular Bose-Einstein condensate from a Fermi gas.

          The realization of superfluidity in a dilute gas of fermionic atoms, analogous to superconductivity in metals, represents a long-standing goal of ultracold gas research. In such a fermionic superfluid, it should be possible to adjust the interaction strength and tune the system continuously between two limits: a Bardeen-Cooper-Schrieffer (BCS)-type superfluid (involving correlated atom pairs in momentum space) and a Bose-Einstein condensate (BEC), in which spatially local pairs of atoms are bound together. This crossover between BCS-type superfluidity and the BEC limit has long been of theoretical interest, motivated in part by the discovery of high-temperature superconductors. In atomic Fermi gas experiments superfluidity has not yet been demonstrated; however, long-lived molecules consisting of locally paired fermions have been reversibly created. Here we report the direct observation of a molecular Bose-Einstein condensate created solely by adjusting the interaction strength in an ultracold Fermi gas of atoms. This state of matter represents one extreme of the predicted BCS-BEC continuum.
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            Bose-Einstein Condensation of Molecules

            S. Jochim (2003)
            We report on the Bose-Einstein condensation of more than 10(5) Li2 molecules in an optical trap starting from a spin mixture of fermionic lithium atoms. During forced evaporative cooling, the molecules are formed by three-body recombination near a Feshbach resonance and finally condense in a long-lived thermal equilibrium state. We measured the characteristic frequency of a collective excitation mode and demonstrated the magnetic field-dependent mean field by controlled condensate spilling.
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              Is Open Access

              Vortex formation in a stirred Bose-Einstein condensate

              Using a focused laser beam we stir a Bose-Einstein condensate of 87Rb confined in a magnetic trap and observe the formation of a vortex for a stirring frequency exceeding a critical value. At larger rotation frequencies we produce states of the condensate for which up to four vortices are simultaneously present. We have also measured the lifetime of the single vortex state after turning off the stirring laser beam.
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                Author and article information

                Journal
                Journal of Physics B: Atomic, Molecular and Optical Physics
                J. Phys. B: At. Mol. Opt. Phys.
                IOP Publishing
                0953-4075
                1361-6455
                January 28 2007
                January 28 2007
                January 10 2007
                : 40
                : 2
                : R1-R37
                Article
                10.1088/0953-4075/40/2/R01
                d2e9b1dd-6b1b-4856-88bc-538b8424ce18
                © 2007
                History

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