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      Ultracold Triplet Molecules in the Rovibrational Ground State

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          Coherent population transfer among quantum states of atoms and molecules

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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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              A High Phase-Space-Density Gas of Polar Molecules

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                Author and article information

                Journal
                PRLTAO
                Physical Review Letters
                Phys. Rev. Lett.
                American Physical Society (APS)
                0031-9007
                1079-7114
                September 2008
                September 25 2008
                : 101
                : 13
                Article
                10.1103/PhysRevLett.101.133005
                c3e3d9f9-d31d-4287-ab97-766641f0cb3d
                © 2008

                http://link.aps.org/licenses/aps-default-license

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