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research article

An optical-frequency synthesizer using integrated photonics

Spencer, Daryl T.
•
Drake, Tara
•
Briles, Travis C.
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2018
Nature

Optical-frequency synthesizers, which generate frequency-stable light from a single microwave-frequency reference, are revolutionizing ultrafast science and metrology, but their size, power requirement and cost need to be reduced if they are to be more widely used. Integrated-photonics microchips can be used in high-coherence applications, such as data transmission1, highly optimized physical sensors2 and harnessing quantum states3, to lower cost and increase efficiency and portability. Here we describe a method for synthesizing the absolute frequency of a lightwave signal, using integrated photonics to create a phase-coherent microwave-to-optical link. We use a heterogeneously integrated III–V/silicon tunable laser, which is guided by nonlinear frequency combs fabricated on separate silicon chips and pumped by off-chip lasers. The laser frequency output of our optical-frequency synthesizer can be programmed by a microwave clock across 4 terahertz near 1,550 nanometres (the telecommunications C-band) with 1 hertz resolution. Our measurements verify that the output of the synthesizer is exceptionally stable across this region (synthesis error of 7.7 × 10−15 or below). Any application of an optical-frequency source could benefit from the high-precision optical synthesis presented here. Leveraging high-volume semiconductor processing built around advanced materials could allow such low-cost, low-power and compact integrated-photonics devices to be widely used.

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Type
research article
DOI
10.1038/s41586-018-0065-7
Author(s)
Spencer, Daryl T.
Drake, Tara
Briles, Travis C.
Stone, Jordan
Sinclair, Laura C.
Fredrick, Connor
Li, Qing
Westly, Daron
Ilic, B. Robert
Bluestone, Aaron
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Date Issued

2018

Published in
Nature
Volume

557

Issue

7703

Start page

81

End page

85

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LPQM  
Available on Infoscience
June 4, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/146693
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