We experimentally demonstrate the controlled enhancement of the mechanical quality factor Q of gallium arsenide disk optomechanical resonators. Disks vibrating at 1.3 GHz with a mechanical shield integrated in their pedestal show a Q improvement by a factor 10-16. The structure is modeled numerically and different modes of vibration are observed, which shed light on the Q enhancement mechanism. An optimized double-disk geometry is presented that promises Q above the million for a large parameter range
Quality factor is one of the most important parameters for a MEMS resonator. Most MEMS resonators ar...
Quality factor is one of the most important parameters for a MEMS resonator. Most MEMS resonators ar...
Cavity optomechanics is a rapidly evolving field operating at the intersection of solid-state physic...
We report on optomechanical GaAs disk resonators with ultrahigh quality factor-frequency product Q ×...
We report on wavelength-sized GaAs optomechanical disk resonators showing ultrastrong optomechanical...
We analyze the magnitude of the radiation pressure and electrostrictive stresses exerted by light co...
At the nanoscale, the optomechanical coupling increases thanks to a reduced optical/mechanical inter...
A new fabrication methodology that allows self-alignment of a micromechanical structure to its ancho...
This thesis work focuses on the design, fabrication and measurement of Gallium Arsenide (GaAs) nano-...
During this doctoral work, we have designed, fabricated and characterised gallium arsenide (GaAs) op...
Optomechanics studies the interaction between light and mechanical motion. This PhD thesis reports o...
Optomechanical coupling between a mechanical oscillator and light trapped in a cavity increases when...
We theoretically and experimentally demonstrate that the support loss of double-disk optomechanical ...
The quality factor of a mechanical resonator is an important figure of merit for various sensing app...
We report on miniature GaAs disk optomechanical resonators vibrating in air in the radiofrequency ra...
Quality factor is one of the most important parameters for a MEMS resonator. Most MEMS resonators ar...
Quality factor is one of the most important parameters for a MEMS resonator. Most MEMS resonators ar...
Cavity optomechanics is a rapidly evolving field operating at the intersection of solid-state physic...
We report on optomechanical GaAs disk resonators with ultrahigh quality factor-frequency product Q ×...
We report on wavelength-sized GaAs optomechanical disk resonators showing ultrastrong optomechanical...
We analyze the magnitude of the radiation pressure and electrostrictive stresses exerted by light co...
At the nanoscale, the optomechanical coupling increases thanks to a reduced optical/mechanical inter...
A new fabrication methodology that allows self-alignment of a micromechanical structure to its ancho...
This thesis work focuses on the design, fabrication and measurement of Gallium Arsenide (GaAs) nano-...
During this doctoral work, we have designed, fabricated and characterised gallium arsenide (GaAs) op...
Optomechanics studies the interaction between light and mechanical motion. This PhD thesis reports o...
Optomechanical coupling between a mechanical oscillator and light trapped in a cavity increases when...
We theoretically and experimentally demonstrate that the support loss of double-disk optomechanical ...
The quality factor of a mechanical resonator is an important figure of merit for various sensing app...
We report on miniature GaAs disk optomechanical resonators vibrating in air in the radiofrequency ra...
Quality factor is one of the most important parameters for a MEMS resonator. Most MEMS resonators ar...
Quality factor is one of the most important parameters for a MEMS resonator. Most MEMS resonators ar...
Cavity optomechanics is a rapidly evolving field operating at the intersection of solid-state physic...