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Ultra-Fast Converging Path-Integral Approach for Rotating Ideal Bose-Einstein Condensates

Quantum Gases 2010-03-10 v1 Statistical Mechanics High Energy Physics - Theory Computational Physics Quantum Physics

Abstract

A recently developed efficient recursive approach for analytically calculating the short-time evolution of the one-particle propagator to extremely high orders is applied here for numerically studying the thermodynamical and dynamical properties of a rotating ideal Bose gas of 87^{87}Rb atoms in an anharmonic trap. At first, the one-particle energy spectrum of the system is obtained by diagonalizing the discretized short-time propagator. Using this, many-boson properties such as the condensation temperature, the ground-state occupancy, density profiles, and time-of-flight absorption pictures are calculated for varying rotation frequencies. The obtained results improve previous semiclassical calculations, in particular for smaller particle numbers. Furthermore, we find that typical time scales for a free expansion are increased by an order of magnitude for the delicate regime of both critical and overcritical rotation.

Keywords

Cite

@article{arxiv.1001.1463,
  title  = {Ultra-Fast Converging Path-Integral Approach for Rotating Ideal Bose-Einstein Condensates},
  author = {Antun Balaz and Ivana Vidanovic and Aleksandar Bogojevic and Axel Pelster},
  journal= {arXiv preprint arXiv:1001.1463},
  year   = {2010}
}

Comments

15 pages, 12 figures, uses elsarticle.cls

R2 v1 2026-06-21T14:32:44.672Z