English

Information theoretic approach to effects of spin-orbit coupling in Bose-Einstein condensates

Quantum Gases 2021-12-28 v1

Abstract

We make use of Shannon entropy (SS) and Fisher information (II) to study the response of atomic density profiles of a spin-orbit coupled Bose-Einstein condensate to changes in the wave number (κL\kappa_L) of the Raman laser that couples two hyperfine states of atoms in the condensate. The choice for values of κL\kappa_L, the so-called spin-orbit parameter, and Rabi frequency (Ω\Omega) leads to two distinct regions in the system's energy spectrum with different order parameters and/or probability densities. In addition, we can have a spatially modulated density profile, reminiscent of the so called stripe phase. Our numbers for SS and II demonstrate that for κL2<Ω\kappa_L^2<\Omega (region 1) the density profile becomes localized as κL\kappa_L increases while we observe delocalization in the density distribution for κL2>Ω\kappa_L^2>\Omega (region 2) for increasing values of κL\kappa_L. In the stripe phase the nature of SS and II to changes in κL\kappa_L is similar to that found for the condensate in region 2. The results for information theoretic quantities in the stripe phase are, in general, augmented compared to those of region 2. In particular, the highly enhanced values of position-space Fisher information imply an extremely concentrated atomic density distribution to provide an evidence for supersolid properties of Bose-Einstein condensates in the presence of spin-orbit coupling.

Keywords

Cite

@article{arxiv.2112.13417,
  title  = {Information theoretic approach to effects of spin-orbit coupling in Bose-Einstein condensates},
  author = {Golam Ali Sekh and Benoy Talukdar and Supriya Chatterjee and Basir Ahamed Khan},
  journal= {arXiv preprint arXiv:2112.13417},
  year   = {2021}
}

Comments

6 pages, 6 figures