English

Quantum harmonic oscillator state control in a squeezed Fock basis

Quantum Physics 2017-08-04 v2 Atomic Physics

Abstract

We demonstrate control of a trapped-ion quantum harmonic oscillator in a squeezed Fock state basis, using engineered Hamiltonians analogous to the Jaynes-Cummings and anti-Jaynes-Cummings forms. We demonstrate that for squeezed Fock states with low nn the engineered Hamiltonians reproduce the n\sqrt{n} scaling of the matrix elements which is typical of Jaynes-Cummings physics, and also examine deviations due to the finite wavelength of our control fields. Starting from a squeezed vacuum state, we apply sequences of alternating transfer pulses which allow us to climb the squeezed Fock state ladder, creating states up to excitations of n=6n = 6 with up to 8.7 dB of squeezing, as well as demonstrating superpositions of these states. These techniques offer access to new sets of states of the harmonic oscillator which may be applicable for precision metrology or quantum information science.

Keywords

Cite

@article{arxiv.1612.05570,
  title  = {Quantum harmonic oscillator state control in a squeezed Fock basis},
  author = {D. Kienzler and H. -Y. Lo and V. Negnevitsky and C. Flühmann and M. Marinelli and J. P. Home},
  journal= {arXiv preprint arXiv:1612.05570},
  year   = {2017}
}

Comments

Added short discussion of possible applications of presented techniques, replaced figures with higher quality versions, typographical corrections

R2 v1 2026-06-22T17:26:22.079Z