2009•Physical Review AOpen access

Bloch oscillations of a Bose-Einstein condensate in a subwavelength optical lattice

Tobias Salger, Gunnar Ritt, Carsten Geckeler, Sebastian Kling, Martin Weitz

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Abstract

We report on experiments studying the transport properties of an atomic Bose-Einstein condensate in an optical lattice of spatial period $\ensuremath{\lambda}∕2n$, where $n$ is an integer, realized with the dispersion of multiphoton Raman transitions. We observe Bloch oscillations, as a clear effect of quantum transport, in a subwavelength-scale periodicity lattice. An unusually large tunneling coupling between lattice sites is evident from the measured effective mass. Future prospects of the different lattice structures are expected in the search for new quantum phases in tailored lattice structures up to quantum computing in optical nanopotentials.

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We report on experiments studying the transport properties of an atomic Bose-Einstein condensate in an optical lattice of spatial period $\ensuremath{\lambda}∕2n$, where $n$ is an integer, realized with the dispersion of multiphoton Raman transitions. We observe Bloch oscillations, as a clear effect of quantum transport, in a subwavelength-scale periodicity lattice. An unusually large tunneling coupling between lattice sites is evident from the measured effective mass. Future prospects of the different lattice structures are expected in the search for new quantum phases in tailored lattice structures up to quantum computing in optical nanopotentials.

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Available abstract

We report on experiments studying the transport properties of an atomic Bose-Einstein condensate in an optical lattice of spatial period $\ensuremath{\lambda}∕2n$, where $n$ is an integer, realized with the dispersion of multiphoton Raman transitions. We observe Bloch oscillations, as a clear effect of quantum transport, in a subwavelength-scale periodicity lattice. An unusually large tunneling coupling between lattice sites is evident from the measured effective mass. Future prospects of the different lattice structures are expected in the search for new quantum phases in tailored lattice structures up to quantum computing in optical nanopotentials.

Key concepts: Optical lattice, Bose–Einstein condensate, Physics, Particle in a one-dimensional lattice, Bloch oscillations, Lattice (music), Quantum tunnelling, Condensed matter physics

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