4.7 Article

Stably accessing octave-spanning microresonator frequency combs in the soliton regime

期刊

OPTICA
卷 4, 期 2, 页码 193-203

出版社

OPTICAL SOC AMER
DOI: 10.1364/OPTICA.4.000193

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  1. Defense Advanced Research Projects Agency (DARPA) (DODOS)
  2. NIST-UMD [70NANB10H193]
  3. Air Force Office of Scientific Research (AFOSR) [FA9550-16-1-0016]

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Microresonator frequency combs can be an enabling technology for optical frequency synthesis and timekeeping in low size, weight, and power architectures. Such systems require comb operation in low-noise, phase-coherent states such as solitons, with broad spectral bandwidths (e. g., octave-spanning) for self-referencing to detect the carrierenvelope offset frequency. However, accessing such states is complicated by thermo-optic dispersion. For example, in the Si3N4 platform, precisely dispersion-engineered structures can support broadband operation, but microsecond thermal time constants often require fast pump power or frequency control to stabilize the solitons. In contrast, here we consider how broadband soliton states can be accessed with simple pump laser frequency tuning, at a rate much slower than the thermal dynamics. We demonstrate octave-spanning soliton frequency combs in Si3N4 microresonators, including the generation of a multi-soliton state with a pump power near 40 mW and a single-soliton state with a pump power near 120 mW. We also develop a simplified two-step analysis to explain how these states are accessed without fast control of the pump laser, and outline the required thermal properties for such operation. Our model agrees with experimental results as well as numerical simulations based on a Lugiato-Lefever equation that incorporates thermo-optic dispersion. Moreover, it also explains an experimental observation that a member of an adjacent mode family on the red-detuned side of the pump mode can mitigate the thermal requirements for accessing soliton states.

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