Papers
Topics
Authors
Recent
Detailed Answer
Quick Answer
Concise responses based on abstracts only
Detailed Answer
Well-researched responses based on abstracts and relevant paper content.
Custom Instructions Pro
Preferences or requirements that you'd like Emergent Mind to consider when generating responses
Gemini 2.5 Flash
Gemini 2.5 Flash 87 tok/s
Gemini 2.5 Pro 53 tok/s Pro
GPT-5 Medium 17 tok/s Pro
GPT-5 High 20 tok/s Pro
GPT-4o 106 tok/s Pro
Kimi K2 156 tok/s Pro
GPT OSS 120B 467 tok/s Pro
Claude Sonnet 4 37 tok/s Pro
2000 character limit reached

Unified laser stabilization and isolation on a silicon chip (2404.03093v2)

Published 3 Apr 2024 in physics.optics

Abstract: Rapid progress in photonics has led to an explosion of integrated devices that promise to deliver the same performance as table-top technology at the nanoscale; heralding the next generation of optical communications, sensing and metrology, and quantum technologies. However, the challenge of co-integrating the multiple components of high-performance laser systems has left application of these nanoscale devices thwarted by bulky laser sources that are orders of magnitude larger than the devices themselves. Here we show that the two main ingredients for high-performance lasers -- noise reduction and isolation -- currently requiring serial combination of incompatible technologies, can be sourced simultaneously from a single, passive, CMOS-compatible nanophotonic device. To do this, we take advantage of both the long photon lifetime and the nonreciprocal Kerr nonlinearity of a high quality factor silicon nitride ring resonator to self-injection lock a semiconductor laser chip while also providing isolation. Additionally, we identify a previously unappreciated power regime limitation of current on-chip laser architectures which our system overcomes. Using our device, which we term a unified laser stabilizer, we demonstrate an on-chip integrated laser system with built-in isolation and noise reduction that operates with turnkey reliability. This approach departs from efforts to directly miniaturize and integrate traditional laser system components and serves to bridge the gap to fully integrated optical technologies.

Definition Search Book Streamline Icon: https://streamlinehq.com
References (6)
  1. K. Kikuchi, Fundamentals of coherent optical fiber communications, Journal of Lightwave Technology 34, 157 (2015).
  2. F. Ashtiani, A. J. Geers, and F. Aflatouni, An on-chip photonic deep neural network for image classification, Nature 606, 501 (2022).
  3. B. Li, Q. Lin, and M. Li, Frequency–angular resolving lidar using chip-scale acousto-optic beam steering, Nature 620, 316 (2023a).
  4. R. Tkach and A. Chraplyvy, Regimes of feedback effects in 1.5-μ𝜇\muitalic_μm distributed feedback lasers, Journal of Lightwave technology 4, 1655 (1986).
  5. A. L. Schawlow and C. H. Townes, Infrared and optical masers, Physical review 112, 1940 (1958).
  6. N. M. Kondratiev and M. L. Gorodetsky, Thermorefractive noise in whispering gallery mode microresonators: Analytical results and numerical simulation, Physics Letters A 382, 2265 (2018).
Citations (2)
List To Do Tasks Checklist Streamline Icon: https://streamlinehq.com

Collections

Sign up for free to add this paper to one or more collections.

Summary

We haven't generated a summary for this paper yet.

Dice Question Streamline Icon: https://streamlinehq.com

Follow-Up Questions

We haven't generated follow-up questions for this paper yet.

X Twitter Logo Streamline Icon: https://streamlinehq.com