Temperature and wavelength drift tolerant WDM transmission and routing in on-chip silicon photonic interconnects

Author:

Roumpos Ioannis1ORCID,Chrysostomidis Themistoklis1,Grimaldi Vittorio2,Zanetto Francesco2ORCID,Toso Fabio2,Heyn Peter De3,Ban Yoojin3,Campenhout Joris Van3,Ferrari Giorgio2,Sampietro Marco2,Morichetti Francesco2ORCID,Melloni Andrea2ORCID,Alexoudi Theonitsa4,Pleros Nikos4,Moralis-Pegios Miltiadis4ORCID,Vyrsokinos Konstantinos1

Affiliation:

1. University of Thessaloniki

2. Information and Bioengineering - Politecnico di Milano

3. Interuniversity Microelectronics Center

4. Aristotle University of Thessaloniki

Abstract

We demonstrate a temperature and wavelength shift resilient silicon transmission and routing interconnect system suitable for multi-socket interconnects, utilizing a dual-strategy CLIPP feedback circuitry that safeguards the operating point of the constituent photonic building blocks along the entire on-chip transmission-multiplexing-routing chain. The control circuit leverages a novel control power-independent and calibration-free locking strategy that exploits the 2nd derivative of ring resonator modulators (RMs) transfer function to lock them close to the point of minimum transmission penalty. The system performance was evaluated on an integrated Silicon Photonics 2-socket demonstrator, enforcing control over a chain of RM-MUX-AWGR resonant structures and stressed against thermal and wavelength shift perturbations. The thermal and wavelength stress tests ranged from 27°C to 36°C and 1309.90 nm to 1310.85 nm and revealed average eye diagrams Q-factor values of 5.8 and 5.9 respectively, validating the system robustness to unstable environments and fabrication variations.

Funder

Horizon 2020 Framework Programme

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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