We compare two approaches for deriving corrections to the “linear model” of cavity optomechanics, in order to describe effects that are beyond first order in the radiation pressure coupling. In the regime where the mechanical frequency is much lower than the cavity one, we compare: (I) a widely used phenomenological Hamiltonian conserving the photon number; (II) a two-mode truncation of C. K. Law’s microscopic model, which we take as the “true” system Hamiltonian. While these approaches agree at first order, the latter model does not conserve the photon number, resulting in challenging computations. We find that approach (I) allows for several analytical predictions, and significantly outperforms the linear model in our numerical examples. ...
Cavity optomechanical systems in the quantum regime consist of a cavity mode and mechanical element ...
This is the final version. Available on open access from Nature Research via the DOI in this recordD...
This thesis explores the dynamics of optomechanical systems, which use radiation pressure to couple ...
We compare two approaches for deriving corrections to the “linear model” of cavity optomechanics, in...
We compare two approaches for deriving corrections to the “linear model” of cavity optomechanics, in...
We review recent progress in the field of optomechanics, where one studies the effects of radiation ...
We exploit local quantum estimation theory to investigate the measurement of linear (g1) and quadrat...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
We exploit local quantum estimation theory to investigate the measurement of linear (g1) and quadrat...
Cavity optomechanical systems in the quantum regime consist of a cavity mode and mechanical element ...
This is the final version. Available on open access from Nature Research via the DOI in this recordD...
This thesis explores the dynamics of optomechanical systems, which use radiation pressure to couple ...
We compare two approaches for deriving corrections to the “linear model” of cavity optomechanics, in...
We compare two approaches for deriving corrections to the “linear model” of cavity optomechanics, in...
We review recent progress in the field of optomechanics, where one studies the effects of radiation ...
We exploit local quantum estimation theory to investigate the measurement of linear (g1) and quadrat...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
Optomechanical systems can exhibit self-sustained limit cycles where the quantum state of the mechan...
We exploit local quantum estimation theory to investigate the measurement of linear (g1) and quadrat...
Cavity optomechanical systems in the quantum regime consist of a cavity mode and mechanical element ...
This is the final version. Available on open access from Nature Research via the DOI in this recordD...
This thesis explores the dynamics of optomechanical systems, which use radiation pressure to couple ...