Silica micro-rod resonator-based Kerr frequency comb for high-speed short-reach optical interconnects

Author:

Murnieks RihardsORCID,Salgals TomsORCID,Alnis Janis1,Ostrovskis Armands,Ozolins Oskars23ORCID,Brice Inga1ORCID,Sedulis Arvids1,Draguns Kristians1,Lyashuk Ilya,Berkis Roberts14,Udalcovs Aleksejs2ORCID,Bi Toby56ORCID,Pang Xiaodan23ORCID,Porins JurgisORCID,Spolitis SandisORCID,Del’Haye Pascal56,Bobrovs Vjaceslavs

Affiliation:

1. University of Latvia

2. RISE Research Institutes of Sweden

3. KTH Royal Institute of Technology

4. University of Innsbruck

5. Max Planck Institute for the Science of Light

6. Friedrich-Alexander-Universität Erlangen-Nürnberg

Abstract

Conventional data center interconnects rely on power-hungry arrays of discrete wavelength laser sources. However, growing bandwidth demand severely challenges ensuring the power and spectral efficiency toward which data center interconnects tend to strive. Kerr frequency combs based on silica microresonators can replace multiple laser arrays, easing the pressure on data center interconnect infrastructure. Therefore, we experimentally demonstrate a bit rate of up to 100 Gbps/λ employing 4-level pulse amplitude modulated signal transmission over a 2 km long short-reach optical interconnect that can be considered a record using any Kerr frequency comb light source, specifically based on a silica micro-rod. In addition, data transmission using the non-return to zero on-off keying modulation format is demonstrated to achieve 60 Gbps/λ. The silica micro-rod resonator-based Kerr frequency comb light source generates an optical frequency comb in the optical C-band with 90 GHz spacing between optical carriers. Data transmission is supported by frequency domain pre-equalization techniques to compensate amplitude–frequency distortions and limited bandwidths of electrical system components. Additionally, achievable results are enhanced with offline digital signal processing, implementing post-equalization using feed-forward and feedback taps.

Funder

European Regional Development Fund

Rīgas Tehniskā Universitāte

H2020 European Research Council

H2020 Marie Skłodowska-Curie Actions

Max-Planck-Gesellschaft

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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