The rapid development of high-Q macroscopic mechanical resonators has enabled great advances in optomechanics. Further improvements could allow for quantum-limited or quantum-enhanced applications at ambient temperature. Some of the remaining challenges include the integration of high-Q structures on a chip, while simultaneously achieving large coupling strengths through an optical read-out. Here, we present a versatile fabrication method, which allows us to build fully integrated optomechanical structures. We place a photonic crystal cavity directly above a mechanical resonator with high-Q fundamental out-of-plane mode, separated by a small gap. The highly confined optical field has a large overlap with the mechanical mode, enabling strong...
We present the design, fabrication, and characterization of a planar silicon photonic crystal cavity...
Macroscopic mechanical objects and electromagnetic degrees of freedom can couple to each other throu...
In this contribution, we will show how nanophotonic structures can be used to gain access to previou...
The rapid development of high-QM macroscopic mechanical resonators has enabled great advances in opt...
Multielement cavity optomechanics constitutes a direction to observe novel effects with mechanical r...
Thermal motion of a room-temperature mechanical resonator typically dominates the quantum backaction...
Cavity optomechanics examines the mutual interaction between light and mechanical motion for control...
Multielement cavity optomechanics constitutes a direction to observe novel effects with mechanical r...
Cavity optomechanics is a rapidly evolving field operating at the intersection of solid-state physic...
We present the design, fabrication, and characterization of a planar silicon photonic crystal cavity...
In recent years, detectible noise spectral densities and displacement caused byoptically driven opto...
All quantum optomechanics experiments to date operate at cryogenic temperatures, imposing severe tec...
We demonstrate an ultrahigh-Q slotted two-dimensional photonic crystal cavity capable of obtaining ...
We demonstrate a new optomechanical device system which allows highly efficient transduction of femt...
Nonlinear optomechanical coupling is the basis for many potential future experiments in quantum opto...
We present the design, fabrication, and characterization of a planar silicon photonic crystal cavity...
Macroscopic mechanical objects and electromagnetic degrees of freedom can couple to each other throu...
In this contribution, we will show how nanophotonic structures can be used to gain access to previou...
The rapid development of high-QM macroscopic mechanical resonators has enabled great advances in opt...
Multielement cavity optomechanics constitutes a direction to observe novel effects with mechanical r...
Thermal motion of a room-temperature mechanical resonator typically dominates the quantum backaction...
Cavity optomechanics examines the mutual interaction between light and mechanical motion for control...
Multielement cavity optomechanics constitutes a direction to observe novel effects with mechanical r...
Cavity optomechanics is a rapidly evolving field operating at the intersection of solid-state physic...
We present the design, fabrication, and characterization of a planar silicon photonic crystal cavity...
In recent years, detectible noise spectral densities and displacement caused byoptically driven opto...
All quantum optomechanics experiments to date operate at cryogenic temperatures, imposing severe tec...
We demonstrate an ultrahigh-Q slotted two-dimensional photonic crystal cavity capable of obtaining ...
We demonstrate a new optomechanical device system which allows highly efficient transduction of femt...
Nonlinear optomechanical coupling is the basis for many potential future experiments in quantum opto...
We present the design, fabrication, and characterization of a planar silicon photonic crystal cavity...
Macroscopic mechanical objects and electromagnetic degrees of freedom can couple to each other throu...
In this contribution, we will show how nanophotonic structures can be used to gain access to previou...