open access publication

Article, 2024

CMOS-compatible high-speed endless automatic polarization controller

APL Photonics, ISSN 2378-0967, Volume 9, 6, Page 066116, 10.1063/5.0198227

Contributors

Wang, Weiqin 0009-0008-3088-8027 [1] Zhou, Ziwen [1] Zeng, Yifan [1] Liu, Jingze [1] Yao, Gengqi [1] Wu, Hao [1] Ding, Yunhong 0000-0002-6823-4722 [2] [3] Zhou, Siyan [3] Yan, Siqi (Corresponding author) [1] Tang, Ming L 0000-0001-8669-4186 (Corresponding author) [1]

Affiliations

  1. [1] Huazhong University of Science and Technology
  2. [NORA names: China; Asia, East];
  3. [2] Technical University of Denmark
  4. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  5. [3] SiPhotonIC ApS, 2830 Virum, Denmark
  6. [NORA names: Denmark; Europe, EU; Nordic; OECD]

Abstract

Automatic polarization controllers find broad applications in various fields, including optical communication, quantum optics, optical sensing, and biomedicine. Currently, the predominant integrated automatic polarization controllers employ either lithium niobate or silicon platforms. Devices based on lithium niobate platforms exhibit excellent performance; however, their fabrication complexity hinders widespread commercial deployment. In contrast, silicon-based integrated automatic polarization controllers benefit from complementary metal–oxide–semiconductor compatibility and reduced fabrication costs. Nevertheless, these silicon automatic polarization controllers suffer from low tracking speeds, peaking at merely 1.256 krad/s. In this study, we demonstrated a silicon high-speed automatic polarization controller, incorporating innovative thermal tuning units combined with a sophisticated control algorithm. The response time of these thermal tuning units has been markedly decreased to 3.2 µs. In addition, we have implemented a novel automatic polarization control algorithm, utilizing gradient descent techniques, on a field-programmable gate array control board. The synergy of the rapid thermal tuning unit and the advanced control algorithm has enabled us to attain an unprecedented polarization control speed of up to 20 krad/s, with this rate being solely limited by the capabilities of our characterization equipment. To our knowledge, this speed is the fastest yet reported for a silicon-based integrated automatic polarization control chip. The proposed device represents a significant breakthrough in the field of silicon-based automatic polarization controllers, paving the way for the future integration of additional polarization management devices. Such an advancement would mark a substantial leap in the realm of integrated photonics, bridging the gap between performance efficiency, cost-effectiveness, and technological integration.

Keywords

advanced control algorithms, advances, algorithm, applications, automatic polarization control, biomedicine, board, capability, characterization, characterization equipment, chip, commercial deployment, communication, compatibility, complex, control, control algorithm, control board, control chip, control speed, cost, cost-effective, deployment, descent technique, devices, efficiency, equipment, excellent performance, fabrication, fabrication complexity, fabrication cost, field, gap, gradient, gradient descent technique, integrated photonics, integration, knowledge, lithium, lithium niobate, lithium niobate platform, low tracking speed, management devices, niobate, optical communication, optical sensing, optics, performance, performance efficiency, photons, platform, polarization, polarization control, polarization management devices, quantum optics, rate, reduced fabrication cost, response, response time, sensing, silicon, silicon platform, speed, study, synergy, technique, technology integration, time, tracking speed, tuning unit, units

Funders

  • National Natural Science Foundation of China

Data Provider: Digital Science