English

Interferometric sensitivity and entanglement by scanning through quantum phase transitions in spinor Bose-Einstein condensates

Quantum Physics 2018-04-04 v1 Quantum Gases Atomic Physics

Abstract

Recent experiments have demonstrated the generation of entanglement by quasi-adiabatically driving through quantum phase transitions of a ferromagnetic spin-1 Bose-Einstein condensate in the presence of a tunable quadratic Zeeman shift. We analyze, in terms of the Fisher information, the interferometric value of the entanglement accessible by this approach. In addition to the Twin-Fock phase studied experimentally, we unveil a second regime, in the broken axisymmetry phase, which provides Heisenberg scaling of the quantum Fisher information and can be reached on shorter time scales. We identify optimal unitary transformations and an experimentally feasible optimal measurement prescription that maximize the interferometric sensitivity. We further ascertain that the Fisher information is robust with respect to non-adiabaticity and measurement noise. Finally, we show that the quasi-adiabatic entanglement preparation schemes admit higher sensitivities than dynamical methods based on fast quenches.

Keywords

Cite

@article{arxiv.1712.03896,
  title  = {Interferometric sensitivity and entanglement by scanning through quantum phase transitions in spinor Bose-Einstein condensates},
  author = {P. Feldmann and M. Gessner and M. Gabbrielli and C. Klempt and L. Santos and L. Pezzè and A. Smerzi},
  journal= {arXiv preprint arXiv:1712.03896},
  year   = {2018}
}

Comments

11 pages, 6 figures

R2 v1 2026-06-22T23:14:30.186Z