Nanophotonic soliton-based microwave synthesizers
Junqiu Liu, Erwan Lucas, Arslan S. Raja, Jijun He, Johann, Riemensberger, Rui Ning Wang, Maxim Karpov, Hairun Guo, Romain Bouchand and, Tobias J. Kippenberg

TL;DR
This paper demonstrates integrated soliton microcombs operating in X- and K-bands, capable of generating low-noise microwave signals with phase noise comparable to electronic synthesizers, advancing photonic microwave synthesis.
Contribution
It introduces integrated soliton microcombs in microwave bands with low phase noise and stabilization, suitable for practical low-noise microwave generation.
Findings
Over 300 comb lines within 3-dB bandwidth
Phase noise below 105 dBc/Hz at 10 kHz offset
Repetition rate stabilization via injection locking
Abstract
Microwave photonic technologies, which upshift the carrier into the optical domain to facilitate the generation and processing of ultrawide-band electronic signals at vastly reduced fractional bandwidths, have the potential to achieve superior performance compared to conventional electronics for targeted functions. For microwave photonic applications such as filters, coherent radars, subnoise detection, optical communications and low-noise microwave generation, frequency combs are key building blocks. By virtue of soliton microcombs, frequency combs can now be built using CMOS compatible photonic integrated circuits, operated with low power and noise, and have already been employed in system-level demonstrations. Yet, currently developed photonic integrated microcombs all operate with repetition rates significantly beyond those that conventional electronics can detect and process,…
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Taxonomy
TopicsAdvanced Fiber Laser Technologies · Advanced Photonic Communication Systems · Photonic and Optical Devices
