Formation and decay of Bose-Einstein condensates in an excited band of a double-well optical lattice
Saurabh Paul, Eite Tiesinga

TL;DR
This paper investigates the formation, thermodynamics, and decay processes of Bose-Einstein condensates in the first excited band of a double-well optical lattice, combining theoretical modeling with experimental relevance.
Contribution
It provides a detailed comparison of tight-binding and numerical models for band structure, estimates critical temperatures, and analyzes decay mechanisms in excited-band BECs.
Findings
Tight-binding model agrees well with numerical results for lowest bands.
Critical temperature exceeds excited band widths for typical parameters.
Decay rates increase with lattice depth but remain below tunneling rates.
Abstract
We study the formation and collision-aided decay of an ultra-cold atomic Bose-Einstein condensate in the first excited band of a double-well 2D-optical lattice with weak harmonic confinement in the perpendicular direction. This lattice geometry is based on an experiment by Wirth et al. The double well is asymmetric, with the local ground state in the shallow well nearly degenerate with the first excited state of the adjacent deep well. We compare the band structure obtained from a tight-binding (TB) model with that obtained numerically using a plane wave basis. We find the TB model to be in quantitative agreement for the lowest two bands, qualitative for next two bands, and inadequate for even higher bands. The band widths of the excited bands are much larger than the harmonic oscillator energy spacing in the direction. We then study the thermodynamics of a non-interacting Bose…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Strong Light-Matter Interactions
