4.7 Article

Photonic circuits for laser stabilization with integrated ultra-high Q and Brillouin laser resonators

期刊

APL PHOTONICS
卷 7, 期 9, 页码 -

出版社

AIP Publishing
DOI: 10.1063/5.0091686

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资金

  1. Advanced Research Projects Agency-Energy (ARPA-E), U.S. Department of Energy, under the OPEN-2018 Program [DE-AR0001042]
  2. DARPA GRYPHON Program [HR0011-22-2-0008]
  3. National Defense Science and Engineering Graduate (NDSEG) Fellowship Program

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The research reports a significant advancement in the integration of stabilized lasers, where a waveguide Brillouin laser was stabilized to a waveguide reference cavity using the same CMOS-compatible integration platform. The achieved performance demonstrates high stability and low noise for various applications.
The integration of stabilized lasers, sources that generate spectrally pure light, will provide compact, low-cost solutions for applications including quantum information sciences, precision navigation and timing, metrology, and high-capacity fiber communications. We report a significant advancement in this field, demonstrating stabilization of an integrated waveguide Brillouin laser to an integrated waveguide reference cavity, where both resonators are fabricated using the same CMOS-compatible integration platform. We demonstrate reduction of the free running Brillouin laser linewidth to a 292 Hz integral linewidth and carrier stabilization to a 4.9 x 10(-13) fractional frequency at 8 ms reaching the cavity-intrinsic thermorefractive noise limit for frequencies down to 80 Hz. We achieve this level of performance using a pair of 56.4 x 10(6) quality factor Si3N4 waveguide ring-resonators that reduce the high-frequency noise by the nonlinear Brillouin process and the low-frequency noise by Pound-Drever-Hall locking to the ultra-low loss resonator. These results represent an important step toward integrated stabilized lasers with reduced sensitivity to environmental disturbances for atomic, molecular, and optical physics (AMO), quantum information processing and sensing, and other precision scientific, sensing, and communications applications. (C)2022 Author(s)

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