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Two-line-seeded dark-soliton microcomb cloning dynamics in normal-dispersion microresonators
Optics Letters
|July 31, 2026
Summary
We numerically investigated cloning optical microcombs using a two-line seed. Independent control of seed-line powers significantly enlarged the receiver soliton existence range, crucial for synchronized photonic systems.
Area of Science:
- Photonics
- Nonlinear optics
- Soliton physics
Background:
- Optical microcombs generate phase-correlated wavelength grids for parallel photonic systems.
- Drift between independent microcomb sources degrades comb-line alignment, hindering applications requiring matched or synchronized combs.
Purpose of the Study:
- To numerically investigate the two-line-seeded cloning of normal-dispersion dark-soliton microcombs.
- To assess the impact of free-spectral-range mismatch on cloned microcombs.
- To explore methods for improving the stability and existence range of cloned dark-soliton microcombs.
Main Methods:
- Numerical simulations using the Lugiato-Lefever equations.
- Generation of a transmitter dark-soliton microcomb via localized pump-mode resonance perturbation.
- Regeneration of a receiver dark-soliton microcomb using the transmitter's pump and μ = -1 comb lines as a two-line seed.
Main Results:
- Free-spectral-range mismatch leads to temporal walk-off, spectral asymmetry, and reduced receiver soliton existence range.
- Independent control of seed-line powers expanded the receiver soliton existence range from ~15 MHz to >1 GHz in the matched case.
- A near-GHz best accessible soliton existence range was maintained over tested mismatches, though the high-performance operating area narrowed.
Conclusions:
- Two-line-seeded cloning is a viable method for regenerating dark-soliton microcombs.
- Independent control of seed-line powers is critical for overcoming spectral mismatch issues and enhancing the robustness of cloned microcombs.
- This technique offers a pathway to improved synchronization and stability in parallel photonic systems.
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