We investigate experimentally the dynamics of a nonspherical levitated nanoparticle in a vacuum. In addition to translation and rotation motion, we observe the light torque-induced precession and nutation of the trapped particle. We provide a theoretical model, which we numerically simulate and from which we derive approximate expressions for the motional frequencies. Both the simulation and approximate expressions we find in good agreement with experiments. We measure a torque of 1.9 ± 0.5 × 10−23 N m at 1 × 10−1 mbar, with an estimated torque sensitivity of 3.6 ± 1.1 × 10−31 N m / √Hz at 1 × 10−7 mbar
Levitated optomechanics is an emerging area of study enabled by optically trapped mesoscopic particl...
Levitation optomechanics exploits the unique mechanical properties of trapped nano-objects in vacuum...
We report on the two-dimensional (2D) dynamics of a levitated nanoparticle in an optical cavity. The...
We investigate experimentally the dynamics of a non-spherical levitated nanoparticle in vacuum. In a...
We investigate experimentally the dynamics of a nonspherical levitated nanoparticle in a vacuum. In...
Optomechanics is concerned with the use of light to control mechanical objects. As a field, it has b...
Thesis (Ph. D.)--University of Rochester. The Institute of Optics, 2019.Optomechanical systems are c...
With the unique advantage of great isolation from the thermal environment, levitated optomechanics h...
Interferometric position detection of levitated particles is crucial for the centre-of-mass (CM) mot...
The hyper-fast rotation frequency realised in an optical levitation system provides an essential pla...
Optically levitated nano-objects in vacuum are among the highest quality mechanical oscillators, and...
Thesis (Ph. D.)--University of Rochester. Department of Physics and Astronomy, 2015.Free-space optic...
Premi extraordinari doctorat 2013-2014Nanotechnology was named one of the key enabling technologies ...
We trap a single silica microparticle in a complex three dimensional optical potential with orbital ...
A mechanically compliant element can be set into motion by the interaction with light. In turn, this...
Levitated optomechanics is an emerging area of study enabled by optically trapped mesoscopic particl...
Levitation optomechanics exploits the unique mechanical properties of trapped nano-objects in vacuum...
We report on the two-dimensional (2D) dynamics of a levitated nanoparticle in an optical cavity. The...
We investigate experimentally the dynamics of a non-spherical levitated nanoparticle in vacuum. In a...
We investigate experimentally the dynamics of a nonspherical levitated nanoparticle in a vacuum. In...
Optomechanics is concerned with the use of light to control mechanical objects. As a field, it has b...
Thesis (Ph. D.)--University of Rochester. The Institute of Optics, 2019.Optomechanical systems are c...
With the unique advantage of great isolation from the thermal environment, levitated optomechanics h...
Interferometric position detection of levitated particles is crucial for the centre-of-mass (CM) mot...
The hyper-fast rotation frequency realised in an optical levitation system provides an essential pla...
Optically levitated nano-objects in vacuum are among the highest quality mechanical oscillators, and...
Thesis (Ph. D.)--University of Rochester. Department of Physics and Astronomy, 2015.Free-space optic...
Premi extraordinari doctorat 2013-2014Nanotechnology was named one of the key enabling technologies ...
We trap a single silica microparticle in a complex three dimensional optical potential with orbital ...
A mechanically compliant element can be set into motion by the interaction with light. In turn, this...
Levitated optomechanics is an emerging area of study enabled by optically trapped mesoscopic particl...
Levitation optomechanics exploits the unique mechanical properties of trapped nano-objects in vacuum...
We report on the two-dimensional (2D) dynamics of a levitated nanoparticle in an optical cavity. The...