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Published March 1, 2024 | in press
Journal Article Open

Topological temporally mode-locked laser

Abstract

Mode-locked lasers play a crucial role in modern science and technology. They are essential to the study of ultrafast and nonlinear optics, and they have applications in metrology, telecommunications and imaging. Recently, there has been interest in studying topological phenomena in mode-locked lasers. From a fundamental perspective, such study promises to reveal nonlinear topological physics, and from a practical perspective it may lead to the development of topologically protected short-pulse sources. Despite this promising outlook, the interplay between topological photonic lattices and laser mode-locking has not been studied experimentally. In this work, we theoretically propose and experimentally realize a topological temporally mode-locked laser. We demonstrate a nonlinearity-driven non-Hermitian skin effect in a laser cavity and observe the robustness of the laser against disorder-induced localization. Our experiments demonstrate fundamental point-gap topological physics that was previously inaccessible to photonics experiments, and they suggest potential applications of our mode-locked laser to sensing, optical computing and robust topological frequency combs. The experimental architecture employed in this work also provides a template for studying topology in other mode-locked photonic sources, including dissipative cavity solitons and synchronously pumped optical parametric oscillators.

Copyright and License

© The Author(s), under exclusive licence to Springer Nature Limited 2024.

Acknowledgement

We are grateful to K. Vahala and L. Wu for lending equipment useful to this work. We thank D. Nelson and N. Hatano for their comments on this work. The authors acknowledge support from NSF Grants No. 1846273 and 1918549 and AFOSR Award No. FA9550-20-1-0040. F.N. is supported in part by the Office of Naval Research (ONR), Japan Science and Technology Agency (JST) (via the Quantum Leap Flagship Program (Q-LEAP) and the Moonshot R&D Grant No. JPMJMS2061) and the Asian Office of Aerospace Research and Development (AOARD) (via Grant No. FA2386-20-1-4069). We wish to thank NTT Research for their financial and technical support.

Data Availability

The data used to generate the plots and results in this paper are available on figshare (https://doi.org/10.6084/m9.figshare.25050494). Source data are provided with this paper. All other data that support the findings of this study are available from the corresponding author upon reasonable request.

Code Availability

The code used to generate the plots and simulation results in this paper is available from the corresponding author upon reasonable request.

Conflict of Interest

A.M. has a financial interest in PINC Technologies Inc., which is developing photonic integrated nonlinear circuits. The other authors declare no competing interests.

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Additional details

Created:
March 5, 2024
Modified:
March 7, 2024