Low-latency passive thermal desensitization of a silicon micro-ring resonator with self-heating

Author:

Lederman Joshua C.1ORCID,Bilodeau Simon1ORCID,Doris Eli1ORCID,Blow Eric C.12,Zhang Weipeng1ORCID,Jimoh Yusuf1ORCID,Shastri Bhavin J.3ORCID,Prucnal Paul R.1

Affiliation:

1. Department of Electrical and Computer Engineering, Princeton University 1 , Princeton, New Jersey 08544, USA

2. NEC Laboratories America 2 , Princeton, New Jersey 08540, USA

3. Department of Physics, Engineering Physics & Astronomy, Queen‘s University 3 , Kingston, Ontario K7L 3N6, Canada

Abstract

Analog photonic information processing can be implemented with low chip area using wavelength-division multiplexed systems, which typically manipulate light using micro-ring resonators. Micro-rings are uniquely susceptible to thermal crosstalk, with negative system performance consequences if not addressed. Existing thermal sensitivity mitigation methods face drawbacks including high complexity, high latency, high digital and analog hardware requirements, and CMOS incompatibility. Here, we demonstrate a passive thermal desensitization mechanism for silicon micro-ring resonators exploiting self-heating resulting from optical absorption. We achieve a 49% reduction in thermal crosstalk sensitivity and 1 µs adaptation latency using a system with no specialized micro-ring engineering, no additional control hardware, and no additional calibration. Our theoretical model indicates the potential for significant further desensitization gains with optimized micro-ring designs. Self-heating desensitization can be combined with active thermal stabilization to achieve both responsiveness and accuracy or applied independently to thermally desensitize large photonic systems for signal processing or neural network inference.

Funder

National Science Foundation

Office of Naval Research

Publisher

AIP Publishing

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