Non-linear optomechanical measurement of mechanical motion
Abstract
Precision measurement of non-linear observables is an important goal in all facets of quantum optics. This allows measurement-based non-classical state preparation, which has been applied to great success in various physical systems, and provides a route for quantum information processing with otherwise linear interactions. In cavity optomechanics much progress has been made using linear interactions and measurement, but observation of non-linear mechanical degrees-of-freedom remains outstanding. Here we report the observation of displacement-squared thermal motion of a micro-mechanical resonator by exploiting the intrinsic non-linearity of the radiation pressure interaction. Using this measurement we generate bimodal mechanical states of motion with separations and feature sizes well below 100~pm. Future improvements to this approach will allow the preparation of quantum superposition states, which can be used to experimentally explore collapse models of the wavefunction and the potential for mechanical-resonator-based quantum information and metrology applications.
Keywords
Cite
@article{arxiv.1404.5746,
title = {Non-linear optomechanical measurement of mechanical motion},
author = {G. A. Brawley and M. R. Vanner and P. E. Larsen and S. Schmid and A. Boisen and W. P. Bowen},
journal= {arXiv preprint arXiv:1404.5746},
year = {2017}
}
Comments
8 pages, 4 figures, extensive supplementary material available with published version