Published March 19, 2025 | Version Supplemental material
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Energy-Efficient Ultrashort-Pulse Characterization Using Nanophotonic Parametric Amplification

Abstract

The growth of ultrafast nanophotonic circuits necessitates the development of energy-efficient on-chip pulse characterization techniques. Nanophotonic realizations of Frequency Resolved Optical Gating (FROG), a common pulse characterization technique in bulk optics, have been challenging due to their noncollinear nature and the lack of efficient nonlinear optical processes in the integrated platform. Here, we experimentally demonstrate a novel FROG-based technique compatible with the nanophotonic platform that leverages the high gain-bandwidth of a dispersion-engineered degenerate optical parametric amplifier (DOPA) for energy-efficient ultrashort pulse characterization. We demonstrate on-chip pulse characterization of sub-80 fs, ∼1 fJ pulses using just ∼60 fJ of gate pulse energy, which is several orders of magnitude lower than the gate pulse energy required for characterizing similar pulses in the bulk counterpart. In the future, we anticipate our work will enable the characterization of ultraweak-ultrashort pulses with energies at the single photon level.

Copyright and License

© 2025 American Chemical Society.

Acknowledgement

Device nanofabrication was performed at the Kavli Nanoscience Institute (KNI) at Caltech.

Funding

The authors gratefully acknowledge support from ARO Grant No. W911NF-23-1-0048, NSF Grant No. 1918549, AFOSR Award FA9550-23-1-0755, DARPA Award D23AP00158, the Center for Sensing to Intelligence at Caltech, the Alfred P. Sloan Foundation, and NASA/JPL.

Contributions

T.Z. and R.G. contributed equally to this work.

Supplemental Material

Additional details about the experimental scheme, postprocessing, and recovery algorithm (PDF)

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Additional details

Related works

Is new version of
Discussion Paper: arXiv:2501.11152 (arXiv)

Funding

United States Army Research Office
W911NF-23-1-0048
National Science Foundation
1918549
United States Air Force Office of Scientific Research
FA9550-23-1-0755
Defense Advanced Research Projects Agency
D23AP00158
Center for Sensing to Intelligence, Caltech
Alfred P. Sloan Foundation
FG-2023-19822
Jet Propulsion Laboratory

Dates

Submitted
2025-01-03
Accepted
2025-02-27
Available
2025-03-03
Published online

Caltech Custom Metadata

Caltech groups
Caltech Center for Sensing to Intelligence (S2I), Kavli Nanoscience Institute, Division of Engineering and Applied Science (EAS)
Publication Status
Published