Accurate mass measurement of a levitated nanomechanical resonator for precision force sensing
Abstract
Nanomechanical resonators are widely operated as force and mass sensors with sensitivities in the zepto-Newton and yocto-gram regime, respectively. Their accuracy, however, is usually undermined by high uncertainties in the effective mass of the system, whose estimation is a non-trivial task. This critical issue can be addressed in levitodynamics, where the nanoresonator typically consists of a single silica nanoparticle of well-defined mass. Yet, current methods assess the mass of the levitated nanoparticles with uncertainties up to a few tens of percent, therefore preventing to achieve unprecedented sensing performances. Here, we present a novel measurement protocol that uses the electrical field from a surrounding plate capacitor to directly drive a charged optically levitated particle in moderate vacuum. The developed technique estimates the mass within a statistical error below 1% and a systematic error of 2%, and paves the way toward more reliable sensing and metrology applications of levitodynamics systems.
Keywords
Cite
@article{arxiv.1812.11645,
title = {Accurate mass measurement of a levitated nanomechanical resonator for precision force sensing},
author = {Francesco Ricci and Marc T. Cuairan and Gerard P. Conangla and Andreas W. Schell and Romain Quidant},
journal= {arXiv preprint arXiv:1812.11645},
year = {2019}
}
Comments
Main text: 4 pages, 3 figures; Supplementary information: 6 pages, 9 figures. Version 03: One supplementary figure added; Text improved