Coupling of Light and Mechanics in a Photonic Crystal Waveguide
arXiv:2007.12900 · doi:10.1073/pnas.2014851117
Abstract
Observations of thermally driven transverse vibration of a photonic crystal waveguide (PCW) are reported. The PCW consists of two parallel nanobeams with a 240 nm vacuum gap between the beams. Models are developed and validated for the transduction of beam motion to phase and amplitude modulation of a weak optical probe propagating in a guided mode (GM) of the PCW for probe frequencies far from and near to the dielectric band edge. Since our PCW has been designed for near-field atom trapping, this research provides a foundation for evaluating possible deleterious effects of thermal motion on optical atomic traps near the surfaces of PCWs. Longer term goals are to achieve strong atom-mediated links between individual phonons of vibration and single photons propagating in the GMs of the PCW, thereby enabling opto-mechanics at the quantum level with atoms, photons, and phonons. The experiments and models reported here provide a basis for assessing such goals, including sensing mechanical motion at the Standard Quantum Limit (SQL).
13 pages, 13 figures
References in corpus (15)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Chiral Quantum Optics
- Quantum computing with trapped ions
- Radiation-pressure cooling and optomechanical instability of a micro-mirror
- Cavity Optomechanics
- Observation of Radiation Pressure Shot Noise on a Macroscopic Object
- Dynamic strain-mediated coupling of a single diamond spin to a mechanical resonator
- Resolved sidebands in a strain-coupled hybrid spin-oscillator system
- Establishing EPR-channels between Nanomechanics and Atomic Ensembles
- Observation of stimulated Brillouin scattering in silicon nitride integrated waveguides
- Coherent, mechanical control of a single electronic spin
- The integration of photonic crystal waveguides with atom arrays in optical tweezers
- Thermal intermodulation noise in cavity-based measurements
- An advanced apparatus for the integration of nanophotonics and cold atoms
- Determination of effective mechanical properties of a double-layer beam by means of a nano-electromechanical transducer