Integrated Reference Cavity for Dual-mode Optical Thermometry and Frequency Stabilization
Qiancheng Zhao, Mark W. Harrington, Andrei Isichenko, Ryan O. Behunin,, Scott B. Papp, Peter T. Rakich, Chad W. Hoyt, Chad Fertig, and Daniel J., Blumenthal

TL;DR
This paper demonstrates a novel integrated silicon nitride waveguide resonator that uses dual-mode optical thermometry for precise temperature measurement and laser frequency stabilization, enhancing stability in quantum sensing and metrology.
Contribution
First implementation of dual-mode optical thermometry in a silicon nitride waveguide resonator for improved frequency stabilization.
Findings
Temperature responsivity of 180.7 MHz/K
Frequency drift rate reduced to 0.31 kHz/s
Fractional frequency instability of 9.6E-11 over 77 seconds
Abstract
Optical frequency stabilization is a critical component for precision scientific systems including quantum sensing, precision metrology, and atomic timekeeping. Ultra-high quality factor photonic integrated optical resonators are a prime candidate for reducing their size, weight and cost as well as moving these systems on chip. However, integrated resonators suffer from temperature-dependent resonance drift due to the large thermal response as well as sensitivity to external environmental perturbations. Suppression of the cavity resonance drift can be achieved using precision interrogation of the cavity temperature through the dual-mode optical thermometry. This approach enables measurement of the cavity temperature change by detecting the resonance difference shift between two polarization or optical frequency modes. Yet this approach has to date only been demonstrated in bulk-optic…
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Taxonomy
TopicsAdvanced Fiber Laser Technologies · Advanced Frequency and Time Standards · Mechanical and Optical Resonators
