TY - JOUR
T1 - Non-sliced optical arbitrary waveform measurement (OAWM) using soliton microcombs
AU - Drayss, D
AU - Fang, DY
AU - Fullner, C
AU - Lihachev, G
AU - Henauer, T
AU - Chen, Y
AU - Peng, HF
AU - Marin-Palomo, P
AU - Zwick, T
AU - Freude, W
AU - Kippenberg, TJ
AU - Randel, S
AU - Koos, C
N1 - Publisher Copyright:
© 2023 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement.
PY - 2023/7/20
Y1 - 2023/7/20
N2 - Comb-based optical arbitrary waveformmeasurement (OAWM)techniques can overcome the bandwidth limitations of conventional coherent detection schemes, thereby enabling ultra-broadband signal acquisition in a wide range of scientific and industrial applications. For efficient and robust implementation of suchOAWMsystems, miniaturization into chip-scale formfactors is key. In this paper,we propose and demonstrate anOAWMscheme that exploits chip-scaleKerr soliton combs as compact and highly scalable multi-wavelength local oscillators (LO) and that does not require optical slicing filters, thus lending itself to efficient implementation on state-of-the-art high-index-contrast integration platforms such as silicon photonics. The scheme allows for measuring truly arbitrary waveforms with high accuracy based on a dedicated system model that is calibrated by means of a femtosecond laser with a known pulse shape.We demonstrate the viability of our approach in a proof-of-concept experiment by capturing optical waveforms with multiple 16QAM and 64QAM wavelength-division multiplexed (WDM) data signals, reaching overall line rates of up to 1.92 Tbit/s within an optical acquisition bandwidth of 610 GHz. To the best of our knowledge, this is the highest bandwidth that has so far been demonstrated in an OAWM experiment. Our work opens a path towards efficient implementation of OAWMsystems, offering THz acquisition bandwidths in highly compact and robust assemblies that can rely on chipscale frequency-comb generators and simple filter-less detector circuits.
AB - Comb-based optical arbitrary waveformmeasurement (OAWM)techniques can overcome the bandwidth limitations of conventional coherent detection schemes, thereby enabling ultra-broadband signal acquisition in a wide range of scientific and industrial applications. For efficient and robust implementation of suchOAWMsystems, miniaturization into chip-scale formfactors is key. In this paper,we propose and demonstrate anOAWMscheme that exploits chip-scaleKerr soliton combs as compact and highly scalable multi-wavelength local oscillators (LO) and that does not require optical slicing filters, thus lending itself to efficient implementation on state-of-the-art high-index-contrast integration platforms such as silicon photonics. The scheme allows for measuring truly arbitrary waveforms with high accuracy based on a dedicated system model that is calibrated by means of a femtosecond laser with a known pulse shape.We demonstrate the viability of our approach in a proof-of-concept experiment by capturing optical waveforms with multiple 16QAM and 64QAM wavelength-division multiplexed (WDM) data signals, reaching overall line rates of up to 1.92 Tbit/s within an optical acquisition bandwidth of 610 GHz. To the best of our knowledge, this is the highest bandwidth that has so far been demonstrated in an OAWM experiment. Our work opens a path towards efficient implementation of OAWMsystems, offering THz acquisition bandwidths in highly compact and robust assemblies that can rely on chipscale frequency-comb generators and simple filter-less detector circuits.
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=myvubstarterapi&SrcAuth=WosAPI&KeyUT=WOS:001045653000001&DestLinkType=FullRecord&DestApp=WOS_CPL
UR - http://www.scopus.com/inward/record.url?scp=85165954943&partnerID=8YFLogxK
U2 - 10.1364/OPTICA.484200
DO - 10.1364/OPTICA.484200
M3 - Article
SN - 2334-2536
VL - 10
SP - 888
EP - 896
JO - OPTICA
JF - OPTICA
IS - 7
ER -