English

Dissipative and Dispersive Optomechanics in a Nanocavity Torque Sensor

Mesoscale and Nanoscale Physics 2014-09-09 v2 Optics Quantum Physics

Abstract

Dissipative and dispersive optomechanical couplings are experimentally observed in a photonic crystal split-beam nanocavity optimized for detecting nanoscale sources of torque. Dissipative coupling of up to approximately 500500 MHz/nm and dispersive coupling of 22 GHz/nm enable measurements of sub-pg torsional and cantilever-like mechanical resonances with a thermally-limited torque detection sensitivity of 1.2×1020Nm/Hz\times 10^{-20} \text{N} \, \text{m}/\sqrt{\text{Hz}} in ambient conditions and 1.3×1021Nm/Hz\times 10^{-21} \text{N} \, \text{m}/\sqrt{\text{Hz}} in low vacuum. Interference between optomechanical coupling mechanisms is observed to enhance detection sensitivity and generate a mechanical-mode-dependent optomechanical wavelength response.

Keywords

Cite

@article{arxiv.1403.6486,
  title  = {Dissipative and Dispersive Optomechanics in a Nanocavity Torque Sensor},
  author = {Marcelo Wu and Aaron C. Hryciw and Chris Healey and David P. Lake and Harishankar Jayakumar and Mark R. Freeman and John P. Davis and Paul E. Barclay},
  journal= {arXiv preprint arXiv:1403.6486},
  year   = {2014}
}

Comments

11 pages, 6 figures