Coating-free monolithic fused silica resonator via total internal reflection for precision laser stabilization
Abstract
Brownian noise in the thin-film mirror coatings of optical reference cavities is a fundamental limitation in precision metrology, including gravitational-wave detectors and optical atomic clocks. We demonstrate a monolithic fused silica resonator that eliminates the use of thin-film coatings by operating via total internal reflection (TIR), achieving a finesse of 1225 and an optical mode volume of \qty{50}{mm^3}. To our knowledge, this is the largest mode volume reported for any coating-free monolithic resonator, comparable to state-of-the-art reference cavities. We use the cavity to frequency-stabilize an Nd:YAG laser, and demonstrate its application to precision metrology by operating it in a passive ring gyroscope configuration. This platform circumvents the dominant noise source of conventional reference cavities and provides a pathway toward cryogenic silicon TIR resonators that could surpass current frequency stabilization limits.
Keywords
Cite
@article{arxiv.2607.29407,
title = {Coating-free monolithic fused silica resonator via total internal reflection for precision laser stabilization},
author = {Swadha Pandey and Rodica Martin and Peter Fritschel and Matthew Evans and Evan D. Hall},
journal= {arXiv preprint arXiv:2607.29407},
year = {2026}
}
Comments
13 pages, 10 figures