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1. TiO2 doping effect on reflective coating mechanical loss for gravitational wave detection at low temperature

2. A Systematic Error in the Internal Friction Measurement of Coatings for Gravitational Waves Detectors

3. Effects of mixing and annealing on the optical and mechanical properties of TiO$_{2}$:Ta$_{2}$O$_{5}$ amorphous coatings

4. Progress in the measurement and reduction of thermal noise in optical coatings for gravitational-wave detectors

5. Point defects in IBS coating for very low loss mirrors

6. Amorphous optical coatings of present gravitational-wave interferometers

7. Observation of a Correlation Between Internal friction and Urbach Energy in Amorphous Oxides Thin Films

8. Stability of samples in coating research: From edge effect to ageing

9. LSST: From Science Drivers to Reference Design and Anticipated Data Products

10. High-Reflection Coatings for Gravitational-Wave Detectors: State of The Art and Future Developments

11. Correlated evolution of structure and mechanical loss of a sputtered silica film

12. Reduction of mechanical losses in ion-beam sputtered tantalum oxide thin films via partial crystallization

13. A new method of probing mechanical losses of coatings at cryogenic temperatures

14. Mechanical loss in state-of-the-art amorphous optical coatings

15. Measurements of mechanical thermal noise and energy dissipation in optical dielectric coatings

16. LSST: from Science Drivers to Reference Design and Anticipated Data Products

17. Titania-doped tantala/silica coatings for gravitational-wave detection

18. Mechanical Loss in Tantala/Silica Dielectric Mirror Coatings

19. Thermal noise in interferometric gravitational wave detectors due to dielectric optical coatings

22. Systematic error in the internal friction measurement of coatings for gravitational wave detectors

23. Argon and Other Defects in Amorphous SiO2 Coatings for Gravitational-Wave Detectors

27. Argon and Other Defects in Amorphous SiO 2 Coatings for Gravitational-Wave Detectors.

28. Thermal noise from optical coatings in gravitational wave detectors

29. What can we Learn from Urbach Energy of Amorphous Oxides Thin Films: Experimental Correlation Between Optical and Mechanical Properties

31. Optical properties of high-quality oxide coating materials used in gravitational-wave advanced detectors

32. Fabrication of SiO2 microcantilever arrays for mechanical loss measurements

36. High precision metrology for large bandpass filters

37. Correlated evolution of structure and mechanical loss of a sputtered silica film

38. High-Reflection Coatings for Gravitational-Wave Detectors:State of The Art and Future Developments

41. A new method of probing mechanical losses of coatings at cryogenic temperatures

42. Mechanical loss in state-of-the-art amorphous optical coatings

43. Mitigation of the spiral pattern induced by the planetary motion

46. Optical coatings for gravitational wave detection

47. The status of GEO 600

48. Measurements of mechanical thermal noise and energy dissipation in optical dielectric coatings

50. Cryogenic measurements of mechanical loss of high-reflectivity coating and estimation of thermal noise

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