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Audio-band Coating Thermal Noise Measurement for Advanced LIGO with a Multi-mode Optical Resonator

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arxiv 1609.05595 v1 pith:XK56DITN submitted 2016-09-19 physics.ins-det astro-ph.IMphysics.optics

classification physics.ins-detastro-ph.IMphysics.optics
keywords noisecoatingthermaladvancedfluctuationsfrequencyhighinstruments
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In modern high precision optical instruments, such as in gravitational wave detectors or frequency references, thermally induced fluctuations in the reflective coatings can be a limiting noise source. This noise, known as coating thermal noise, can be reduced by choosing materials with low mechanical loss. Examination of new materials becomes a necessity in order to further minimize the coating thermal noise and thus improve sensitivity of next generation instruments. We present a novel approach to directly measure coating thermal noise using a high finesse folded cavity in which multiple Hermite-Gaussian modes co-resonate. This method is used to probe surface fluctuations on the order 10^-17 m\rtHz in the frequency range 30-400 Hz. We applied this technique to measure thermal noise and loss angle of the coating used in Advanced LIGO.

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  1. Fundamental Noise and Gravitational-Wave Sensitivity of the Laser Interferometer Lunar Antenna (LILA)

    gr-qc 2025-08 unverdicted novelty 4.0 of 10

    The Moon's normal-mode resonances would amplify gravitational-wave signals enough for the proposed LILA interferometer to reach astrophysically useful sensitivity from millihertz to decihertz.

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