Giant Transverse Optical Forces in Nanoscale Slot Waveguides of Hyperbolic Metamaterials
arXiv:1206.2285 · doi:10.1364/OE.20.022372
Abstract
Here we demonstrate that giant transverse optical forces can be generated in nanoscale slot waveguides of hyperbolic metamaterials, with more than two orders of magnitude stronger compared to the force created in conventional silicon slot waveguides, due to the nanoscale optical field enhancement and the extreme optical energy compression within the air slot region. Both numerical simulation and analytical treatment are carried out to study the dependence of the optical forces on the waveguide geometries and the metamaterial permittivity tensors, including the attractive optical forces for the symmetric modes and the repulsive optical forces for the anti-symmetric modes. The significantly enhanced transverse optical forces result from the strong optical mode coupling strength between two metamaterial waveguides, which can be explained with an explicit relation derived from the coupled mode theory. Moreover, the calculation on realistic metal-dielectric multilayer structures indicates that the predicted giant optical forces are achievable in experiments, which will open the door for various optomechanical applications in nanoscale, such as optical nanoelectromechanical systems, optical sensors and actuators.
18 pages, 6 figures
References in corpus (4)
Cited by in corpus (9)
- Hyperbolic Metamaterials: From Dispersion Manipulation to Application
- Enhancing Optical Gradient Forces with Metamaterials
- Hyperbolic Metamaterial Feasible for Fabrication with Direct Laser Writing Processes
- Optical forces through the effective refractive index
- Nanoscale Plasmonic Slot Waveguides for Enhanced Raman Spectroscopy
- Hexagonal boron nitride cavity optomechanics
- From quantum to classical without Planck constant going to zero
- Anomalous optical coupling between two silicon wires of a slot waveguide in epsilon-near-zero metamaterials
- Measurement of mechanical deformations induced by enhanced electromagnetic stress on a parallel metallic-plate system