English

Ultralow-Noise SiN Trampoline Resonators for Sensing and Optomechanics

Mesoscale and Nanoscale Physics 2017-05-22 v4 Optics

Abstract

In force sensing, optomechanics, and quantum motion experiments, it is typically advantageous to create lightweight, compliant mechanical elements with the lowest possible force noise. Here we report wafer-scale batch fabrication and characterization of high-aspect-ratio, nanogram-scale Si3_3N4_4 "trampolines" having quality factors above 4×1074 \times 10^7 and ringdown times exceeding five minutes (1 mHz linewidth). We measure a thermally limited force noise sensitivity of 16.2±\pm0.8 aN/Hz1/2^{1/2} at room temperature, with a spring constant (\sim1 N/m) 2-5 orders of magnitude larger than those of competing technologies. We also characterize the suitability of these devices for high-finesse cavity readout and optomechanics applications, finding no evidence of surface or bulk optical losses from the processed nitride in a cavity achieving finesse 40,000. These parameters provide access to a single-photon cooperativity C08C_0 \sim 8 in the resolved-sideband limit, wherein a variety of outstanding optomechanics goals become feasible.

Keywords

Cite

@article{arxiv.1511.01769,
  title  = {Ultralow-Noise SiN Trampoline Resonators for Sensing and Optomechanics},
  author = {Christoph Reinhardt and Tina Müller and Alexandre Bourassa and Jack C. Sankey},
  journal= {arXiv preprint arXiv:1511.01769},
  year   = {2017}
}

Comments

8 pages, 4 figures, 1 table