Please use this identifier to cite or link to this item: https://doi.org/10.1016/j.jcp.2010.07.001
Title: Efficient numerical methods for computing ground states and dynamics of dipolar Bose-Einstein condensates
Authors: Bao, W. 
Cai, Y.
Wang, H. 
Keywords: Backward Euler sine pseudospectral method
Dipolar Bose-Einstein condensate
Dipolar interaction potential
Gross-Pitaevskii equation
Gross-Pitaevskii-Poisson type system
Ground state
Time-splitting sine pseudospectral method
Issue Date: Oct-2010
Citation: Bao, W., Cai, Y., Wang, H. (2010-10). Efficient numerical methods for computing ground states and dynamics of dipolar Bose-Einstein condensates. Journal of Computational Physics 229 (20) : 7874-7892. ScholarBank@NUS Repository. https://doi.org/10.1016/j.jcp.2010.07.001
Abstract: New efficient and accurate numerical methods are proposed to compute ground states and dynamics of dipolar Bose-Einstein condensates (BECs) described by a three-dimensional (3D) Gross-Pitaevskii equation (GPE) with a dipolar interaction potential. Due to the high singularity in the dipolar interaction potential, it brings significant difficulties in mathematical analysis and numerical simulations of dipolar BECs. In this paper, by decoupling the two-body dipolar interaction potential into short-range (or local) and long-range interactions (or repulsive and attractive interactions), the GPE for dipolar BECs is reformulated as a Gross-Pitaevskii-Poisson type system. Based on this new mathematical formulation, we prove rigorously existence and uniqueness as well as nonexistence of the ground states, and discuss the existence of global weak solution and finite time blow-up of the dynamics in different parameter regimes of dipolar BECs. In addition, a backward Euler sine pseudospectral method is presented for computing the ground states and a time-splitting sine pseudospectral method is proposed for computing the dynamics of dipolar BECs. Due to the adoption of new mathematical formulation, our new numerical methods avoid evaluating integrals with high singularity and thus they are more efficient and accurate than those numerical methods currently used in the literatures for solving the problem. Extensive numerical examples in 3D are reported to demonstrate the efficiency and accuracy of our new numerical methods for computing the ground states and dynamics of dipolar BECs. © 2010 Elsevier Inc.
Source Title: Journal of Computational Physics
URI: http://scholarbank.nus.edu.sg/handle/10635/103182
ISSN: 00219991
DOI: 10.1016/j.jcp.2010.07.001
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