On the design of low phase noise and flat spectrum optical parametric frequency comb

Author:

Cai Yijia1ORCID,Sohanpal Ronit1ORCID,Luo Yuan2ORCID,Heidt Alexander M.3ORCID,Liu Zhixin1ORCID

Affiliation:

1. Optical Networks Group, Department of Electronic and Electrical Engineering, University College London 1 , London, United Kingdom

2. School of Science and Engineering, The Chinese University of Hong Kong 2 , Hong Kong, China

3. Institute of Applied Physics, University of Bern 3 , Bern, Switzerland

Abstract

Optical frequency combs (OFCs) have become increasingly pervasive in recent years, with their advantageous frequency coherence properties enabling significant developments in numerous fields, such as optical communications, spectroscopy, and microwave signal processing. Recent interest in OFC development emphasizes minimizing and mitigating phase noise of individual comb lines for high-quality signal generation, processing, and detection. Cavity-less electro-optic combs and parametric combs are attractive sources for these applications in that they permit flat spectra, tunable tone spacing, and robustness to temperature variations. Although previous research has demonstrated broadband parametric OFC generation, the scaling of the phase noise has not been systematically investigated. Here, we demonstrate a 25 GHz-spacing cavity-less parametric OFC generator and investigate the interaction between electronic and optical noise sources that affect its phase noise and linewidth. In addition, we study the optimal design of a nonlinear amplified loop mirror based pulse shaper with a focus on the impact of pump power on the signal-to-pedestal power ratio, which ultimately influences the spectral flatness and the optical signal-to-noise ratio (OSNR) after the parametric expansion. Notably, we design the OFC using all polarization-maintaining (PM) components, demonstrating the performance of PM highly nonlinear fibers in parametric comb generation. This results in a PM cavity-less comb with <9 dB power variation over 110 nm, >0 dBm power per tone, <10 kHz linewidth, and >23 dB OSNR. These characteristics make it highly desirable for application in communication and signal processing.

Funder

Engineering and Physical Sciences Research Council

Biotechnology and Biological Sciences Research Council

Royal Society

National Natural Science Foundation of China

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

AIP Publishing

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

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