Comprehensive study of amorphous metal oxide and TaO-based mixed oxide coatings for gravitational-wave detectors
arXiv:2108.02127 · doi:10.1103/PhysRevD.105.102008
Abstract
High finesse optical cavities of current interferometric gravitational-wave detectors are significantly limited in sensitivity by laser quantum noise and coating thermal noise. The thermal noise is associated with internal energy dissipation in the materials that compose the test masses of the interferometer. Our understanding of how the internal friction is linked to the amorphous material structure is limited due to the complexity of the problem and the lack of studies that span over a large range of materials. We present a systematic investigation of amorphous metal oxide and TaO-based mixed oxide coatings to evaluate their suitability for low Brownian noise experiments. It is shown that the mechanical loss of metal oxides is correlated to their amorphous morphology, with continuous random network materials such as SiO and GeO featuring the lowest loss angles. We evaluated different TaO-based mixed oxide thin films and studied the influence of the dopant in the optical and elastic properties of the coating. We estimated the thermal noise associated with high-reflectance multilayer stacks that employ each of the mixed oxides as the high index material. We concluded that the current high index material of TiO-doped TaO is the optimal choice for reduced thermal noise among TaO-based mixed oxide coatings with low dopant concentrations.
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