Stability and dynamics of optically levitated dielectric disks in a Gaussian standing wave beyond the harmonic approximation
T. Seberson, F. Robicheaux

TL;DR
This paper investigates the stability and dynamics of dielectric disks trapped in a Gaussian standing wave, highlighting the importance of third-order coupling terms beyond the harmonic approximation for accurate modeling.
Contribution
It introduces a comprehensive analysis including third-order coupling effects in the dynamics of optically levitated disks, extending beyond the harmonic approximation and Rayleigh limit.
Findings
Disks remain stably trapped for beam waists of 1-4 μm.
Third-order coupling significantly affects the dynamics and spectral features.
Power spectral densities reveal multiple sidebands due to coupling effects.
Abstract
Forces and torques exerted on dielectric disks trapped in a Gaussian standing wave are analyzed theoretically for disks of radius with index of refraction and as well as disks of radius 200 nm with . Calculations of the forces and torques were conducted both analytically and numerically using a discrete-dipole approximation method. Besides harmonic terms, third order ro-translational coupling terms in the potential energy can be significant and a necessary consideration when describing the dynamics of disks outside of the Rayleigh limit. The coupling terms are a result of the finite extension of the disk coupling to both the Gaussian and standing wave geometry of the beam. The resulting dynamics of the degrees of freedom most affected by the coupling terms exhibit several sidebands as evidenced in the power spectral densities. Simulations show…
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