We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast switching between two trapping frequencies. The measured phase-space distribution of the center of mass of our particle shows the typical shape of a squeezed thermal state, from which we infer up to 2.7 dB of squeezing along one motional direction. In these experiments the average thermal occupancy is high and, even after squeezing, the motional state remains in the remit of classical statistical mechanics. Nevertheless, we argue that the manipulation scheme described here could be used to achieve squeezing in the quantum regime if preceded by cooling of the levitated mechanical oscillator. Additionally, a higher degree of squeezing could, in p...
We theoretically show that laser recoil heating in free-space levitated optomechanics can be arbitra...
Optomechanics studies the interaction between light and a mechanical resonator, enabled via radiati...
Optomechanical systems explore and exploit the coupling between light and the mechanical motion of m...
We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast sw...
We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast sw...
According to quantum mechanics, a harmonic oscillator can never be completely at rest. Even in the g...
We create squeezed light by exploiting the quantum nature of the mechanical interaction between lase...
Recently, remarkable advances have been made in coupling a number of high-Q modes of nano-mechanical...
.The ability to engineer and control the macroscopic motion of mechanical oscillators has become an ...
We experimentally investigate a mechanical squeezed state realized in a parametrically modulated mem...
We investigate the creation of squeezed states of a vibrating membrane or a movable mirror in an opt...
About a decade ago, optically levitated nanoparticles have been proposed for macroscopic tests of qu...
Squeezing light is a critical resource in both fundamental physics and precision measurement. Squeez...
Free space gradient force traps are hugely versatile experimental systems. Their realisation opens u...
Optomechanics is concerned with the use of light to control mechanical objects. As a field, it has b...
We theoretically show that laser recoil heating in free-space levitated optomechanics can be arbitra...
Optomechanics studies the interaction between light and a mechanical resonator, enabled via radiati...
Optomechanical systems explore and exploit the coupling between light and the mechanical motion of m...
We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast sw...
We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast sw...
According to quantum mechanics, a harmonic oscillator can never be completely at rest. Even in the g...
We create squeezed light by exploiting the quantum nature of the mechanical interaction between lase...
Recently, remarkable advances have been made in coupling a number of high-Q modes of nano-mechanical...
.The ability to engineer and control the macroscopic motion of mechanical oscillators has become an ...
We experimentally investigate a mechanical squeezed state realized in a parametrically modulated mem...
We investigate the creation of squeezed states of a vibrating membrane or a movable mirror in an opt...
About a decade ago, optically levitated nanoparticles have been proposed for macroscopic tests of qu...
Squeezing light is a critical resource in both fundamental physics and precision measurement. Squeez...
Free space gradient force traps are hugely versatile experimental systems. Their realisation opens u...
Optomechanics is concerned with the use of light to control mechanical objects. As a field, it has b...
We theoretically show that laser recoil heating in free-space levitated optomechanics can be arbitra...
Optomechanics studies the interaction between light and a mechanical resonator, enabled via radiati...
Optomechanical systems explore and exploit the coupling between light and the mechanical motion of m...