English

Mechanical Resonators for Quantum Optomechanics Experiments at Room Temperature

Mesoscale and Nanoscale Physics 2016-04-07 v3 Optics Quantum Physics

Abstract

All quantum optomechanics experiments to date operate at cryogenic temperatures, imposing severe technical challenges and fundamental constraints. Here we present a novel design of on-chip mechanical resonators which exhibit fundamental modes with frequencies ff and mechanical quality factors QmQ_\mathrm{m} sufficient to enter the optomechanical quantum regime at room temperature. We overcome previous limitations by designing ultrathin, high-stress silicon nitride (Si3_3N4_4) membranes, with tensile stress in the resonators' clamps close to the ultimate yield strength of the material. By patterning a photonic crystal on the SiN membranes, we observe reflectivities greater than 99%. These on-chip resonators have remarkably low mechanical dissipation, with QmQ_\mathrm{m}\sim10810^8, while at the same time exhibiting large reflectivities. This makes them a unique platform for experiments towards the observation of massive quantum behavior at room temperature.

Keywords

Cite

@article{arxiv.1511.06235,
  title  = {Mechanical Resonators for Quantum Optomechanics Experiments at Room Temperature},
  author = {Richard A. Norte and Joao P. Moura and Simon Gröblacher},
  journal= {arXiv preprint arXiv:1511.06235},
  year   = {2016}
}
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