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Induced Directional Switching of Platicon Microcombs in Photonic Crystal Ring Resonators

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abstract

Microcombs in normal-dispersion photonic crystal ring resonators (PhCRs) are a versatile building block for next-generation integrated photonic circuits, yet they inherently suffer from a directional bias that favors backward-propagating states. This necessitates bulky, non-integrated optical circulators for comb extraction, creating a significant bottleneck for full on-chip integration. In this work, we demonstrate a deterministic method to control and reverse this directionality through Side-mode Induced Forward Forcing (SIFF). By engineering auxiliary mode splittings on resonances adjacent to the pump, we show that the nonlinear dynamics can be steered to favor stable, forward-propagating platicon states. We establish an optimal synchronization condition between the pump and side-mode coupling rates that ensures forward-comb dominance across a wide parameter range. Our findings, validated both numerically and experimentally, provide a critical pathway for circulator-free, integrated normal-dispersion microcombs, offering a scalable architecture for compact telecommunications and sensing systems.

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2026 1

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Bright solitons in hybrid-dispersion photonic crystal microresonators

physics.optics · 2026-07-07 · accept · novelty 7.0

A hybrid-dispersion photonic crystal microresonator produces backward-propagating dissipative Kerr solitons in the blue-detuned regime, reconciling broadband spectra with deterministic single-soliton formation at 25 GHz repetition rates.

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  • Bright solitons in hybrid-dispersion photonic crystal microresonators physics.optics · 2026-07-07 · accept · none · ref 2 · internal anchor

    A hybrid-dispersion photonic crystal microresonator produces backward-propagating dissipative Kerr solitons in the blue-detuned regime, reconciling broadband spectra with deterministic single-soliton formation at 25 GHz repetition rates.