Rotational cavity optomechanics
arXiv:1504.00920 · doi:10.1364/JOSAB.32.000B55
Abstract
We theoretically examine the optomechanical interaction between a rotating nanoparticle and an orbital angular momentum-carrying optical cavity mode. Specifically, we consider a dielectric nanosphere rotating uniformly in a ring-shaped optical potential inside a Fabry-Perot resonator. The motion of the particle is probed by a weak angular lattice, created by introducing two additional degenerate Laguerre-Gaussian cavity modes carrying equal and opposite orbital angular momenta. We demonstrate that the rotation frequency of the nanoparticle is imprinted on the probe optical mode, via the Doppler shift, and thus may be sensed experimentally using homodyne detection. We show analytically that the effect of the optical probe on the particle rotation vanishes in the regime of linear response, resulting in an accurate frequency measurement. We also numerically characterize the degradation of the measurement accuracy when the system is driven in the nonlinear regime. Our results are relevant to rotational Doppler velocimetry and to studies of rotational Brownian motion in a periodic lattice.
7 pages, 2 figures, to appear in JOSA B
References in corpus (5)
- Ground-state cooling of a micromechanical oscillator: generalized framework for cold damping and cavity-assisted cooling schemes
- Measuring the translational and rotational velocity of particles in helical motion using structured light
- Optical measurement of torque exerted on an elongated object by a non-circular laser beam
- Optomechanical Stochastic Resonance in a Macroscopic Torsion Oscillator
- Optomechanical coupling between a moving dielectric sphere and radiation fields: a Lagrangian-Hamiltonian formalism
Cited by in corpus (8)
- Quantum rotations of nanoparticles
- Cavity-assisted manipulation of freely rotating silicon nanorods in high vacuum
- Optomechanical measurement of photon spin angular momentum and optical torque in integrated photonic devices
- Quantum optomechanics in a liquid
- Optomechanics based on angular momentum exchange between light and matter
- Torsional optomechanical cooling of a nanofiber
- Low-energy scattering of ultracold atoms by a dielectric nanosphere
- A perturbative algorithm for rotational decoherence