4.7 Article

Directly accessing octave-spanning dissipative Kerr soliton frequency combs in an AIN microresonator

Journal

PHOTONICS RESEARCH
Volume 9, Issue 7, Pages 1351-1357

Publisher

CHINESE LASER PRESS
DOI: 10.1364/PRJ.427567

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Funding

  1. Science Foundation Ireland [17/NSFC/4918]
  2. National Natural Science Foundation of China [61861136001]
  3. Science Foundation Ireland (SFI) [17/NSFC/4918] Funding Source: Science Foundation Ireland (SFI)

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This study introduces a simple method to achieve octave-spanning DKS in an aluminum nitride microresonator. By using two nearly degenerate modes, a single pump can generate DKS and enhance soliton access window.
Self-referenced dissipative Kerr solitons (DKSs) based on optical microresonators offer prominent characteristics allowing for various applications from precision measurement to astronomical spectrometer calibration. To date, direct octave-spanning DKS generation has been achieved only in ultrahigh-Q silicon nitride microresonators under optimized laser tuning speed or bi-directional tuning. Here we propose a simple method to easily access the octave-spanning DKS in an aluminum nitride (AIN) microresonator. In the design, two modes that belong to different families but with the same polarization are nearly degenerate and act as a pump and an auxiliary resonance, respectively. The presence of the auxiliary resonance can balance the thermal dragging effect, crucially simplifying the DKS generation with a single pump and leading to an enhanced soliton access window. We experimentally demonstrate the long-lived DKS operation with a record single-soliton step (10.4 GHz or 83 pm) and an octave-spanning bandwidth (1100-2300 nm) through adiabatic pump tuning. Our scheme also allows for direct creation of the DKS state with high probability and without elaborate wavelength or power schemes being required to stabilize the soliton behavior. (C) 2021 Chinese Laser Press

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