Observation of Backaction and Self-Induced Trapping in a Planar Hollow Photonic Crystal Cavity
Abstract
The optomechanical coupling between a resonant optical field and a nanoparticle through trapping forces is demonstrated. Resonant optical trapping, when achieved in a hollow photonic crystal cavity is accompanied by cavity backaction effects that result from two mechanisms. First, the effect of the particle on the resonant field is measured as a shift in the cavity eigenfrequency. Second, the effect of the resonant field on the particle is shown as a wavelength-dependent trapping strength. The existence of two distinct trapping regimes, intrinsically particle specific, is also revealed. Long optical trapping (>10min) of 500 nm dielectric particles is achieved with very low intracavity powers (<120μW).
- Publication:
-
Physical Review Letters
- Pub Date:
- March 2013
- DOI:
- 10.1103/PhysRevLett.110.123601
- Bibcode:
- 2013PhRvL.110l3601D
- Keywords:
-
- 42.50.Wk;
- 42.60.Da;
- 42.70.Qs;
- 87.80.Cc;
- Mechanical effects of light on material media microstructures and particles;
- Resonators cavities amplifiers arrays and rings;
- Photonic bandgap materials;
- Optical trapping