We demonstrate an effect whereby stochastic, thermal fluctuations combine with nonconservative optical forces to break detailed balance and produce increasingly coherent, apparently deterministic motion for a vacuum-trapped particle. The particle is birefringent and held in a linearly polarized Gaussian optical trap. It undergoes oscillations that grow rapidly in amplitude as the air pressure is reduced, seemingly in contradiction to the equipartition of energy. This behavior is reproduced in direct simulations and captured in a simplified analytical model, showing that the underlying mechanism involves nonsymmetric coupling between rotational and translational degrees of freedom. When parametrically driven, these self-sustained oscillators...
We explore the collective non-Hermitian dynamics of a pair of non-conservatively coupled optomechani...
Funding: Engineering and Physical Sciences Research Council (EPSRC) (EP/J01771X/1).We demonstrate tr...
The use of levitated nanospheres represents a new paradigm for the optomechanical cooling of a small...
We demonstrate an effect whereby stochastic, thermal fluctuations combine with nonconservative optic...
The forces acting on an isotropic microsphere in optical tweezers are effectively conservative. Howe...
The non-conservative, azimuthal forces associated with inhomogeneous optical-spin angular momentum p...
Particles held in optical tweezers are commonly thought to be at thermodynamic equilibrium with thei...
Quantum state preparation of mesoscopic objects is a powerful playground for the elucidation of many...
We demonstrate trapping and rotation of two mesoscopic particles in vacuum using a spatial-light-mod...
We demonstrate optical trapping of a microgyroscope rotating at MHz rates in vacuum. The particle is...
Optomechanical systems explore and exploit the coupling between light and the mechanical motion of m...
Coupling between mesoscopic particles levitated in vacuum is a prerequisite for the realization of a...
We explore the collective non-Hermitian dynamics of a pair of non-conservatively coupled optomechani...
We demonstrate the transfer of orbital angular momentum to optically levitated microparticles in vac...
We explore the collective non-Hermitian dynamics of a pair of non-conservatively coupled optomechani...
Funding: Engineering and Physical Sciences Research Council (EPSRC) (EP/J01771X/1).We demonstrate tr...
The use of levitated nanospheres represents a new paradigm for the optomechanical cooling of a small...
We demonstrate an effect whereby stochastic, thermal fluctuations combine with nonconservative optic...
The forces acting on an isotropic microsphere in optical tweezers are effectively conservative. Howe...
The non-conservative, azimuthal forces associated with inhomogeneous optical-spin angular momentum p...
Particles held in optical tweezers are commonly thought to be at thermodynamic equilibrium with thei...
Quantum state preparation of mesoscopic objects is a powerful playground for the elucidation of many...
We demonstrate trapping and rotation of two mesoscopic particles in vacuum using a spatial-light-mod...
We demonstrate optical trapping of a microgyroscope rotating at MHz rates in vacuum. The particle is...
Optomechanical systems explore and exploit the coupling between light and the mechanical motion of m...
Coupling between mesoscopic particles levitated in vacuum is a prerequisite for the realization of a...
We explore the collective non-Hermitian dynamics of a pair of non-conservatively coupled optomechani...
We demonstrate the transfer of orbital angular momentum to optically levitated microparticles in vac...
We explore the collective non-Hermitian dynamics of a pair of non-conservatively coupled optomechani...
Funding: Engineering and Physical Sciences Research Council (EPSRC) (EP/J01771X/1).We demonstrate tr...
The use of levitated nanospheres represents a new paradigm for the optomechanical cooling of a small...