We report on the mechanical loss from bulk and shear stresses in thin film, ion beam deposited, titania–doped tantala. The numerical values of these mechanical losses are necessary to fully calculate the Brownian thermal noise in precision optical cavities, including interferometric gravitational wave detectors like LIGO. We found the values from measuring the normal mode mechanical quality factors, Q's, in the frequency range of about 2000-10,000 Hz, of silica disks coated with titania–doped tantala coupled with calculating the elastic energy in shear and bulk stresses in the coating using a finite element model. We fit the results to both a frequency independent and frequency dependent model and find ϕ_(shear)=(8.3±1.1)×10^(−4), ϕ_(bulk)=...
Future advanced gravitational wave detectors will need to be constructed using ultra low loss materi...
Previous studies have quantified the mechanical dissipation associated with dielectric thin films fo...
The noise caused by internal mechanical dissipation in the high refractive index amorphous thin fil...
We report on the mechanical loss from bulk and shear stresses in thin film, ion beam deposited, tita...
The current generation of advanced gravitational wave detectors utilize titania-doped tantala/silica...
The current generation of advanced gravitational wave detectors utilize titania-doped tantala/silica...
Brownian thermal noise is a limiting factor for the sensitivity of many high precision metrology app...
Mirror thermal noise in Ta2O5/SiO2 coatings is predicted to be the limiting noise in the 50-300 Hz f...
All current gravitational wave detectors use test masses coated with alternating layers of two diffe...
Current interferometric gravitational wave detectors use test masses with mirror coatings formed fro...
We estimate the loss angles of the materials currently used in the highly reflective test-mass coati...
Brownian thermal noise in dielectric multilayer coatings limits the sensitivity of current and futur...
Reduction of Brownian thermal noise due to mechanical loss in high-reflectivity mirror coatings is c...
International audienceWe present the results of mechanical characterizations of many different high-...
International audienceWe report on the development and extensive characterization of co-sputtered ta...
Future advanced gravitational wave detectors will need to be constructed using ultra low loss materi...
Previous studies have quantified the mechanical dissipation associated with dielectric thin films fo...
The noise caused by internal mechanical dissipation in the high refractive index amorphous thin fil...
We report on the mechanical loss from bulk and shear stresses in thin film, ion beam deposited, tita...
The current generation of advanced gravitational wave detectors utilize titania-doped tantala/silica...
The current generation of advanced gravitational wave detectors utilize titania-doped tantala/silica...
Brownian thermal noise is a limiting factor for the sensitivity of many high precision metrology app...
Mirror thermal noise in Ta2O5/SiO2 coatings is predicted to be the limiting noise in the 50-300 Hz f...
All current gravitational wave detectors use test masses coated with alternating layers of two diffe...
Current interferometric gravitational wave detectors use test masses with mirror coatings formed fro...
We estimate the loss angles of the materials currently used in the highly reflective test-mass coati...
Brownian thermal noise in dielectric multilayer coatings limits the sensitivity of current and futur...
Reduction of Brownian thermal noise due to mechanical loss in high-reflectivity mirror coatings is c...
International audienceWe present the results of mechanical characterizations of many different high-...
International audienceWe report on the development and extensive characterization of co-sputtered ta...
Future advanced gravitational wave detectors will need to be constructed using ultra low loss materi...
Previous studies have quantified the mechanical dissipation associated with dielectric thin films fo...
The noise caused by internal mechanical dissipation in the high refractive index amorphous thin fil...