Nonlinear dynamics and millikelvin cavity-cooling of levitated nanoparticles
Abstract
Optomechanical systems explore and exploit the coupling between light and the mechanical motion of matter. A nonlinear coupling offers access to rich new physics, in both the quantum and classical regimes. We investigate a dynamic, as opposed to the usually studied static, nonlinear optomechanical system, comprising of a nanosphere levitated and cooled in a hybrid electro-optical trap. An optical cavity offers readout of both linear-in-position and quadratic-in-position (nonlinear) light-matter coupling, whilst simultaneously cooling the nanosphere to millikelvin temperatures for indefinite periods of time in high vacuum. We observe cooling of the linear and non-linear motion, leading to a fold reduction in phonon number , attaining final occupancies of . This work puts cavity cooling of a levitated object to the quantum ground-state firmly within reach.
Cite
@article{arxiv.1511.08482,
title = {Nonlinear dynamics and millikelvin cavity-cooling of levitated nanoparticles},
author = {P. Z. G. Fonseca and E. B. Aranas and J. Millen and T. S. Monteiro and P. F. Barker},
journal= {arXiv preprint arXiv:1511.08482},
year = {2016}
}
Comments
5 pages