Published November 14, 2006 | Version v1
Journal article

Response of Bose gases in time-dependent optical superlattices

  • 1. Institut fuer Kernphysik, Technische Universitaet Darmstadt, 64289 Darmstadt (Germany)

Description

The dynamic response of ultracold Bose gases in one-dimensional optical lattices and superlattices is investigated based on exact numerical time evolutions in the framework of the Bose-Hubbard model. The system is excited by a temporal amplitude modulation of the lattice potential, as it was done in recent experiments. For regular lattice potentials, the dynamic signatures of the superfluid to Mott-insulator transition are studied and the position and the fine-structure of the resonances is explained by a linear response analysis. Using direct simulations and the perturbative analysis it is shown that in the presence of a two-colour superlattice the excitation spectrum changes significantly when going from the homogeneous Mott-insulator to the quasi-Bose-glass phase. A characteristic and experimentally accessible signature for the quasi-Bose-glass is the appearance of low-lying resonances and a suppression of the dominant resonance of the Mott-insulator phase

Availability note (English)

Available online at http://stacks.iop.org/0953-4075/39/4547/b6_21_015.pdf or at the Web site for the Journal of Physics. B, Atomic, Molecular and Optical Physics (ISSN 1361-6455) http://www.iop.org/

Additional details

Publishing Information

Journal Title
Journal of Physics. B, Atomic, Molecular and Optical Physics
Journal Volume
39
Journal Issue
21
Journal Page Range
p. 4547-4562
ISSN
0953-4075
CODEN
JPAPEH

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
38014435
Subject category
S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY;
Descriptors DEI
AMPLITUDES; BOSE-EINSTEIN GAS; EXCITATION; FINE STRUCTURE; HUBBARD MODEL; MODULATION; ONE-DIMENSIONAL CALCULATIONS; POTENTIALS; RESONANCE; SUPERFLUIDITY; SUPERLATTICES; TIME DEPENDENCE
Descriptors DEC
CRYSTAL MODELS; ENERGY-LEVEL TRANSITIONS; MATHEMATICAL MODELS