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      Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms

      , , , ,
      Nature
      Springer Science and Business Media LLC

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          Abstract

          For a system at a temperature of absolute zero, all thermal fluctuations are frozen out, while quantum fluctuations prevail. These microscopic quantum fluctuations can induce a macroscopic phase transition in the ground state of a many-body system when the relative strength of two competing energy terms is varied across a critical value. Here we observe such a quantum phase transition in a Bose-Einstein condensate with repulsive interactions, held in a three-dimensional optical lattice potential. As the potential depth of the lattice is increased, a transition is observed from a superfluid to a Mott insulator phase. In the superfluid phase, each atom is spread out over the entire lattice, with long-range phase coherence. But in the insulating phase, exact numbers of atoms are localized at individual lattice sites, with no phase coherence across the lattice; this phase is characterized by a gap in the excitation spectrum. We can induce reversible changes between the two ground states of the system.

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          Most cited references19

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          Boson localization and the superfluid-insulator transition

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            Optical Dipole Traps for Neutral Atoms

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              Squeezed States in a Bose-Einstein Condensate

              C. Orzel (2001)
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                Author and article information

                Journal
                Nature
                Nature
                Springer Science and Business Media LLC
                0028-0836
                1476-4687
                January 2002
                January 2002
                : 415
                : 6867
                : 39-44
                Article
                10.1038/415039a
                11780110
                e8eacbb4-60be-4b3c-af7d-c391267d1678
                © 2002

                http://www.springer.com/tdm

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