A novel protocol for generating quantum superpositions of macroscopically distinct states of a bulk mechanical oscillator is proposed, compatible with existing optomechanical devices operating in the bad-cavity limit. By combining a pulsed optomechanical quantum nondemolition (QND) interaction with nonclassical optical resources and measurement-induced feedback, the need for strong single-photon coupling is avoided. We outline a three-pulse sequence of QND interactions encompassing squeezing-enhanced cooling by measurement, state preparation, and tomography
Quantum entanglement and quantum superposition are fundamental properties of quantum mechanics, whic...
We propose a protocol for coherently transferring non-Gaussian quantum states from optical field to ...
A pertinent question in cavity optomechanics is whether reaching the regime of large single-photon c...
The investigation of macroscopic quantum phenomena is a current active area of research that offers ...
Studying mechanical resonators via radiation pressure offers a rich avenue for the exploration of qu...
Exploring the quantum behaviour of macroscopic objects provides an intriguing avenue to study the fo...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
We propose a protocol for coherently transferring non-Gaussian quantum states from an optical field ...
Entanglement generation at a macroscopic scale o ers an exciting avenue to de- velop new quantum tec...
Schr\"{o}dinger cat states, consisting of superpositions of macroscopically distinct states, provide...
The ability to prepare a macroscopic mechanical resonator into a quantum superposition state is an o...
We introduce a scheme to reconstruct an arbitrary quantum state of a mechanical oscillator network. ...
Cavity quantum optomechanics has emerged as a new platform for quantum science and technology with a...
Quantum optomechanics uses optical means to generate and manipulate quantum states of motion of mech...
In a recent publication [K. Hammerer, M. Wallquist, C. Genes, M. Ludwig, F. Marquardt, P. Treutlein,...
Quantum entanglement and quantum superposition are fundamental properties of quantum mechanics, whic...
We propose a protocol for coherently transferring non-Gaussian quantum states from optical field to ...
A pertinent question in cavity optomechanics is whether reaching the regime of large single-photon c...
The investigation of macroscopic quantum phenomena is a current active area of research that offers ...
Studying mechanical resonators via radiation pressure offers a rich avenue for the exploration of qu...
Exploring the quantum behaviour of macroscopic objects provides an intriguing avenue to study the fo...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
We propose a protocol for coherently transferring non-Gaussian quantum states from an optical field ...
Entanglement generation at a macroscopic scale o ers an exciting avenue to de- velop new quantum tec...
Schr\"{o}dinger cat states, consisting of superpositions of macroscopically distinct states, provide...
The ability to prepare a macroscopic mechanical resonator into a quantum superposition state is an o...
We introduce a scheme to reconstruct an arbitrary quantum state of a mechanical oscillator network. ...
Cavity quantum optomechanics has emerged as a new platform for quantum science and technology with a...
Quantum optomechanics uses optical means to generate and manipulate quantum states of motion of mech...
In a recent publication [K. Hammerer, M. Wallquist, C. Genes, M. Ludwig, F. Marquardt, P. Treutlein,...
Quantum entanglement and quantum superposition are fundamental properties of quantum mechanics, whic...
We propose a protocol for coherently transferring non-Gaussian quantum states from optical field to ...
A pertinent question in cavity optomechanics is whether reaching the regime of large single-photon c...