Temperature-insensitive tunable and stable Fabry-Perot cavity for atomic physics
Abstract
Optical Fabry-Perot cavities are crucial tools for metrology experiments, where they achieve extreme length stability, and for some atomic physics experiments, where tunability to atomic transitions enables atom-light interactions. However, achieving both frequency stability and tunability in a single cavity has remained a challenge, forcing metrology experiments exploiting atom-cavity interactions to rely on external active feedback systems to stabilize the length of the cavity. Here, we describe a piezoelectrically-tunable cavity with a cancellation of the coefficient of thermal expansion at around , achieving fractional frequency instabilities at the level for 1~s integration time. This advance eliminates the need for external stabilization in many atom-cavity experiments, making this design ideal for applications such as ultra-stable superradiant lasers and other cavity quantum electrodynamics experiments.
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@article{arxiv.2603.11817,
title = {Temperature-insensitive tunable and stable Fabry-Perot cavity for atomic physics},
author = {Joshua Ruelle and Martin Hauden and Francisco S. Ponciano-Ojeda and Marion Delehaye},
journal= {arXiv preprint arXiv:2603.11817},
year = {2026}
}
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