<p>Highly reflective dielectric mirror coatings are critical components in a range of precision optics applications including frequency combs, optical atomic clocks, precision interferometry and ring laser gyroscopes. A key limitation to the performance in these applications is thermal noise, arising from the mechanical loss of the coatings. The origins of the mechanical loss from these coatings is not well understood.</p> <p>Recent work suggests that the mechanical loss of amorphous Ta2O5 coatings can drop by as much as 40% when it is doped with TiO2. We use a combination of electron diffraction data and atomic modelling using molecular dynamics to probe the atomic structure of these coatings, and examine the correlati...
Amorphous films of tantalum oxide (Ta2O5) are widely applied to build highly reflective mirrors used...
Amorphous mixed titania-tantala coatings are key components of Bragg reflectors in the gravitational...
Ta2O5 mechanical losses seem to be the main cause of mirror thermal noise, limiting current interfer...
<p>Highly reflective dielectric mirror coatings are critical components in a range of precisio...
Low optical and mechanical loss Ta<sub>2</sub>O<sub>5</sub> amorphous coatin...
The exceptional stability required from high finesse optical cavities and high precision interferome...
The dominant noise source in aLIGO is Brownian thermal noise, due to mechanical losses in the atomic...
2021 Summer.Includes bibliographical references.Amorphous thin films prepared from vapor deposition ...
We have investigated by spectroscopic ellipsometry (SE, 190-1700 nm) the optical properties of unifo...
Advanced generations of ground-based gravitational wave detectors will use ultra-low-loss amorphous ...
© 2019 American Physical Society. Understanding the local atomic order in amorphous thin film coatin...
The atomic structure of mixtures of titania (TiO2) and tantala (Ta2O5) ion-beam sputtered amorphous ...
Thermal noise arising from mechanical dissipation in oxide coatings is a major limitation to many pr...
Future advanced gravitational wave detectors will need to be constructed using ultra low loss materi...
High finesse optical cavities of current interferometric gravitational-wave detectors are significan...
Amorphous films of tantalum oxide (Ta2O5) are widely applied to build highly reflective mirrors used...
Amorphous mixed titania-tantala coatings are key components of Bragg reflectors in the gravitational...
Ta2O5 mechanical losses seem to be the main cause of mirror thermal noise, limiting current interfer...
<p>Highly reflective dielectric mirror coatings are critical components in a range of precisio...
Low optical and mechanical loss Ta<sub>2</sub>O<sub>5</sub> amorphous coatin...
The exceptional stability required from high finesse optical cavities and high precision interferome...
The dominant noise source in aLIGO is Brownian thermal noise, due to mechanical losses in the atomic...
2021 Summer.Includes bibliographical references.Amorphous thin films prepared from vapor deposition ...
We have investigated by spectroscopic ellipsometry (SE, 190-1700 nm) the optical properties of unifo...
Advanced generations of ground-based gravitational wave detectors will use ultra-low-loss amorphous ...
© 2019 American Physical Society. Understanding the local atomic order in amorphous thin film coatin...
The atomic structure of mixtures of titania (TiO2) and tantala (Ta2O5) ion-beam sputtered amorphous ...
Thermal noise arising from mechanical dissipation in oxide coatings is a major limitation to many pr...
Future advanced gravitational wave detectors will need to be constructed using ultra low loss materi...
High finesse optical cavities of current interferometric gravitational-wave detectors are significan...
Amorphous films of tantalum oxide (Ta2O5) are widely applied to build highly reflective mirrors used...
Amorphous mixed titania-tantala coatings are key components of Bragg reflectors in the gravitational...
Ta2O5 mechanical losses seem to be the main cause of mirror thermal noise, limiting current interfer...