4.8 Article

Dispersive-wave induced noise limits in miniature soliton microwave sources

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NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-021-21658-7

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  1. Defense Advanced Research Projects Agency under the APhI program [FA9453-19-C-0029]
  2. Kavli Nanoscience Institute

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This study investigates the noise suppression approach of using soliton microcombs to generate microwaves, revealing a fundamental noise mechanism related to fluctuations of dispersive wave frequency and demonstrating a reduction in pump noise. The authors explore the noise spectrum of soliton microcombs and identify uncorrelated thermal fluctuations as an underlying mechanism for noise generation.
Compact, low-noise microwave sources are required throughout a wide range of application areas including frequency metrology, wireless-communications and airborne radar systems. And the photonic generation of microwaves using soliton microcombs offers a path towards integrated, low noise microwave signal sources. In these devices, a so called quiet-point of operation has been shown to reduce microwave frequency noise. Such operation decouples pump frequency noise from the soliton's motion by balancing the Raman self-frequency shift with dispersive-wave recoil. Here, we explore the limit of this noise suppression approach and reveal a fundamental noise mechanism associated with fluctuations of the dispersive wave frequency. At the same time, pump noise reduction by as much as 36 dB is demonstrated. This fundamental noise mechanism is expected to impact microwave noise (and pulse timing jitter) whenever solitons radiate into dispersive waves belonging to different spatial mode families. Here the authors explore the noise spectrum of soliton microcomb when the pump is decoupled from the solitons motion by balancing the Raman shift with the emitted dispersive wave. Based on the analysis of the phase noise and the soliton repetition rate, they identify the uncorrelated thermal fluctuations as underlying mechanism.

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