Publication | Open Access
Gain-Assisted Optomechanical Position Locking of Metal/Dielectric Nanoshells in Optical Potentials
19
Citations
31
References
2020
Year
Optical MaterialsEngineeringNano-opticsOptomechanical SystemOptomechanicsGain-assisted Optical ForcesMetal/dielectric NanoshellsNonlinear Optical TrappingOptical PropertiesBiophysicsLevitated OptomechanicsNanophotonicsPlasmonic MaterialMaterials SciencePhotonicsPhysicsPhotonic DeviceElectro-optics DevicePlasmonicsApplied PhysicsOptical TrappingOptical Forces
We investigate gain-assisted optical forces on dye-enriched silver nanoshell in the quasi-static limit by means of a theoretical/numerical approach. We demonstrate the onset of nonlinear optical trapping of these resonant nanostructures in a counter-propagating Gaussian beam configuration. We study the optical forces and trapping behavior as a function of wavelength, particle gain level, and laser power. We support the theoretical analysis with Brownian dynamics simulations that show how particle position locking is achieved at high gains in extended optical trapping potentials. Finally, for wavelengths blue-detuned with respect to the plasmon-enhanced resonance, we observe particle channeling by the standing wave antinodes due to gradient force reversal. This work opens perspectives for gain-assisted optomechanics where nonlinear optical forces are finely tuned to efficiently trap, manipulate, channel, and deliver an externally controlled nanophotonic system.
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