Noise dynamics in large mode volume Brillouin lasers
Andrew J. Shepherd, Daniel J. Blumenthal, and Ryan O. Behunin

TL;DR
This paper develops a coupled-mode theoretical model for large mode volume Brillouin lasers, revealing unique noise dynamics and linewidth behaviors due to multiple cavity modes within the gain bandwidth.
Contribution
It introduces a comprehensive coupled-mode theory for large mode volume Brillouin lasers accounting for multiple modes, advancing understanding of their noise spectra and linewidth characteristics.
Findings
Broad gain bandwidth causes atypical Brillouin dynamics.
Distinct features in noise spectra influence linewidth.
Transferred RIN from pump affects linewidth significantly.
Abstract
Photonic integrated Brillouin lasers have emerged as an important tool to realize a wide range of precision applications, including atomic time-keeping, low-noise microwave signal generation, fiber and quantum sensing, and ultra-high capacity coherent communications. While Brillouin lasers routinely achieve sub-Hz instantaneous linewidths, many of these applications also require exceptional frequency stability and high-power single-mode emission. A recent demonstration showed that extending the resonator length increases the laser power while also improving the frequency stability through suppression of thermorefractive noise. However, as the resonator scales to larger lengths, multiple optical resonances can be found within the Brillouin gain bandwidth, greatly complicating the laser dynamics compared to existing coupled-mode Brillouin laser models. Given the potential to scale lasers…
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Taxonomy
TopicsMechanical and Optical Resonators · Advanced Fiber Optic Sensors · Advanced Fiber Laser Technologies
