Generation and detection of non-Gaussian phonon-added coherent states in optomechanical systems
Abstract
Adding excitations on a coherent state provides an effective way to observe nonclassical properties of radiation fields. Here we describe and analyse how to apply this concept to the motional state of a mechanical oscillator and present a full scheme to prepare non-Gaussian {\it phonon}-added coherent states of the mechanical motion in cavity optomechanics. We first generate a mechanical coherent state using electromagnetically induced transparency. We then add a single phonon onto the coherent state via optomechanical parametric down-conversion combined with single photon detection. We validate this single-phonon-added coherent state by using a red-detuned beam and reading out the state of the optical output field. This approach allows us to verify nonclassical properties of the phonon state, such as sub-Poissonian character and quadrature squeezing. We further show that our scheme can be directly implemented using existing devices, and is generic in nature and hence applicable to a variety of systems in opto- and electromechanics.
Keywords
Cite
@article{arxiv.1803.06767,
title = {Generation and detection of non-Gaussian phonon-added coherent states in optomechanical systems},
author = {Jie Li and Simon Gröblacher and Shi-Yao Zhu and G. S. Agarwal},
journal= {arXiv preprint arXiv:1803.06767},
year = {2018}
}
Comments
slightly extended main text, Supp. Mat. as in v2. to appear in PRA Rapid Comm