English

A fully hybrid integrated Erbium-based laser

Optics 2023-05-08 v1

Abstract

Erbium-doped fiber lasers exhibit high coherence and low noise as required for applications in fiber optic sensing, gyroscopes, LiDAR, and optical frequency metrology. Endowing Erbium-based gain in photonic integrated circuits can provide a basis for miniaturizing low-noise fiber lasers to chip-scale form factor, and enable large-volume applications. Yet, while major progress has been made in the last decade on integrated lasers based on silicon photonics with III-V gain media, the integration of Erbium lasers on chip has been compounded by large laser linewidth. Recent advances in photonic integrated circuit-based high-power Erbium-doped amplifiers, make a new class of rare-earth-ion-based lasers possible. Here, we demonstrate a fully integrated chip-scale Erbium laser that achieves high power, narrow linewidth, frequency agility, and the integration of a III-V pump laser. The laser circuit is based on an Erbium-implanted ultralow-loss silicon nitride Si3_3N44 photonic integrated circuit. This device achieves single-mode lasing with a free-running intrinsic linewidth of 50 Hz, a relative intensity noise of <<-150 dBc/Hz at >>10 MHz offset, and output power up to 17 mW, approaching the performance of fiber lasers and state-of-the-art semiconductor extended cavity lasers. An intra-cavity microring-based Vernier filter enables wavelength tunability of >> 40 nm within the C- and L-bands while attaining side mode suppression ratio (SMSR) of >> 70 dB, surpassing legacy fiber lasers in tuning and SMRS performance. This new class of low-noise, tuneable Erbium waveguide laser could find applications in LiDAR, microwave photonics, optical frequency synthesis, and free-space communications. Our approach is extendable to other wavelengths, and more broadly, constitutes a novel way to photonic integrated circuit-based rare-earth-ion-doped lasers.

Keywords

Cite

@article{arxiv.2305.03652,
  title  = {A fully hybrid integrated Erbium-based laser},
  author = {Yang Liu and Zheru Qiu and Xinru Ji and Andrea Bancora and Grigory Lihachev and Johann Riemensberger and Rui Ning Wang and Andrey Voloshin and Tobias J. Kippenberg},
  journal= {arXiv preprint arXiv:2305.03652},
  year   = {2023}
}
R2 v1 2026-06-28T10:27:06.522Z