Slow Light Frequency Reference Cavities -- Proof of Concept for Reducing the Frequency Sensitivity Due to Length Fluctuations
arXiv:2104.03880 · doi:10.1088/1367-2630/ac5932
Abstract
Length changes due to thermo-mechanical noise originating from, for example, Brownian motion are a key limiting factor of present day state-of-the-art laser frequency stabilization using Fabry-Pérot cavities. We present a laser-frequency stabilization concept using an optical cavity with a strong slow-light effect to reduce the impact of cavity length changes on the frequency stability. The resulting noise-reduction factor is proportional to the ratio between the light phase and group velocities in the highly dispersive cavity spacer. We experimentally demonstrate a proof-of-principle implementation of this laser-frequency stabilization technique using a rare-earth doped crystalline cavity spacer in conjunction with semi-permanent spectral tailoring to achieve precise control of the dispersive properties of the cavity. Compared to the same setup in the absence of the slow-light effect a reduction in frequency sensitivity of four orders of magnitude was achieved.
Published version, 24 pages, 7 figures
References in corpus (5)
- Compact, thermal-noise-limited optical cavity for diode laser stabilization at 1 x 10-15
- Sub-Hz line width diode lasers by stabilization to vibrationally and thermally compensated ULE Fabry-Perot cavities
- A compact, robust, and transportable ultra-stable laser with a fractional frequency instability of
- Laser frequency stabilization based on steady-state spectral-hole burning in Eu:YSiO
- Double-heterodyne probing for ultra-stable laser based on spectral hole burning in a rare-earth doped crystal