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arXiv · 2311.16426

Gravitational Wave Detection and Low-Noise Sapphire Oscillators

Abstract

This thesis describes the development of an ultra-low noise sapphire resonator oscillator that is tunable over X-band. While undertaking this task the author has explained some interesting and very useful phenomena in regards to the design and understanding of multi-mode resonant cavities and oscillators. The oscillator was constructed to operate as the pump oscillator in the superconducting parametric transducer system, attached to a 1.5-tonne niobium resonant bar gravitational wave detector. The effects of incorporating the pump oscillator with the parametric transducer and resonant bar system are analyzed to enable prediction of the detector sensitivity. The detector was the first massive precision optomechanical system ever built. With the resurgence in interest in resonant detectors, this thesis has important work on multi-mode acoustic systems, coupled to a highly sensitive parametric transducer relevant for many fields of research today.

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BibTeXRIS

Michael Edmund Tobar. 2023-11-28. Gravitational Wave Detection and Low-Noise Sapphire Oscillators. https://arxiv.org/abs/2311.16426

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