Photon number-squeezed states are of significant value in fundamental quantum research and have a wide range of applications in quantum metrology. Most of their preparation mechanisms require precise control of quantum dynamics and are less tolerant to dissipation. We propose a mechanism that is not subject to these restraints. In contrast to common approaches, we exploit the self-balancing between two types of dissipation induced by positive- and negative-temperature reservoirs to generate steady states with sub-Poissonian statistical distributions of photon numbers. We also show how to implement this mechanism with cavity optomechanical systems. The quality of the prepared photon number-squeezed state is estimated by our theoretical model...
We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast sw...
We characterize the local properties of an optomechanical system comprising the movable mirror of a ...
The ability to prepare a macroscopic mechanical resonator into a quantum superposition state is an o...
We theoretically show that laser recoil heating in free-space levitated optomechanics can be arbitra...
Quantum squeezing is an important resource in modern quantum technologies, such as quantum precision...
With technological advancements to achieve strong single-photon optomechanical coupling it becomes n...
We develop a theory of optomechanical cooling with a squeezed input light field. We show that Stokes...
We present the mechanical squeezing of a mg-scale suspended mirror (i.e. a pendulum) near quantum re...
Owing to their long-lifetimes at cryogenic temperatures, mechanical oscillators are recognized as an...
Squeezed states of the optical field were theoretically described in the early 1970s and first obser...
A general formalism for computing the full counting statistics of energy exchanged between 'N' squee...
Motivated by entanglement protection, our work utilizes a resonance effect to enhance optomechanical...
Cavity quantum optomechanics has emerged as a new platform for quantum science and technology with a...
The investigation of macroscopic quantum phenomena is a current active area of research that offers ...
Quantum oscillators in Gaussian states are often characterized by average occupation numbers that re...
We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast sw...
We characterize the local properties of an optomechanical system comprising the movable mirror of a ...
The ability to prepare a macroscopic mechanical resonator into a quantum superposition state is an o...
We theoretically show that laser recoil heating in free-space levitated optomechanics can be arbitra...
Quantum squeezing is an important resource in modern quantum technologies, such as quantum precision...
With technological advancements to achieve strong single-photon optomechanical coupling it becomes n...
We develop a theory of optomechanical cooling with a squeezed input light field. We show that Stokes...
We present the mechanical squeezing of a mg-scale suspended mirror (i.e. a pendulum) near quantum re...
Owing to their long-lifetimes at cryogenic temperatures, mechanical oscillators are recognized as an...
Squeezed states of the optical field were theoretically described in the early 1970s and first obser...
A general formalism for computing the full counting statistics of energy exchanged between 'N' squee...
Motivated by entanglement protection, our work utilizes a resonance effect to enhance optomechanical...
Cavity quantum optomechanics has emerged as a new platform for quantum science and technology with a...
The investigation of macroscopic quantum phenomena is a current active area of research that offers ...
Quantum oscillators in Gaussian states are often characterized by average occupation numbers that re...
We experimentally squeeze the thermal motional state of an optically levitated nanosphere by fast sw...
We characterize the local properties of an optomechanical system comprising the movable mirror of a ...
The ability to prepare a macroscopic mechanical resonator into a quantum superposition state is an o...