On-chip multi-timescale spatiotemporal optical synchronization

dc.contributor.authorXu, Lida
dc.contributor.authorMehrabad, Mahmoud Jalali
dc.contributor.authorFlower, Christopher J.
dc.contributor.authorMoille, Gregory
dc.contributor.authorRestelli, Alessandro
dc.contributor.authorSuarez-Forero, Daniel G.
dc.contributor.authorChembo, Yanne
dc.contributor.authorMittal, Sunil
dc.contributor.authorSrinivasan, Kartik
dc.contributor.authorHafezi, Mohammad
dc.date.accessioned2025-10-03T19:34:09Z
dc.date.issued2025-09-12
dc.description.abstractMode-locking mechanisms are key resources in nonlinear optical phenomena, such as micro-ring solitonic states, and have transformed metrology, precision spectroscopy, and optical communication. However, despite significant efforts, mode-locking has not been demonstrated in the independently tunable multi-timescale regime. Here, we vastly expand the nonlinear mode-locking toolbox into multi-timescale synchronization on a chip. We use topological photonics to engineer a 2D lattice of hundreds of coupled silicon nitride ring resonators capable of hosting nested mode-locked states with a fast (≈1 THz) single-ring and a slow (≈3 GHz) topological super-ring timescales. We demonstrate signatures of multi-timescale mode-locking including quadratic distribution of the pump noise with the two-time azimuthal mode dimensions, as expected by mode-locking theory. Our observations are further corroborated by direct signatures of the near-transform-limit repetition beats and the formation of the temporal pattern on the slow timescale. Moreover, we show that these exotic properties of edge-confined mode-locked states are in sharp contrast to bulk and single-ring counterparts and establish a clear pathway for their identification. Our unprecedented demonstration of mode-locking in topological combs unlocks the implementation of lattice-scale synchronization and independently tunable multi-timescale mode-locking phenomena, also the exploration of the fundamental nonlinearity-topology interplay on a chip.
dc.description.sponsorshipthis research is funded by AFOSR FA9550-22- 1- 0339, nSFdMR2019444, and OnR n00014- 20- 1- 2325
dc.description.urihttps://www.science.org/doi/10.1126/sciadv.adw7696
dc.format.extent9 pages
dc.genrejournal articles
dc.identifierdoi:10.13016/m2ob0q-cokh
dc.identifier.citationXu, Lida, Mahmoud Jalali Mehrabad, Christopher J. Flower, et al. “On-Chip Multi-Timescale Spatiotemporal Optical Synchronization.” Science Advances 11, no. 37 (2025). https://doi.org/10.1126/sciadv.adw7696.
dc.identifier.urihttps://doi.org/10.1126/sciadv.adw7696
dc.identifier.urihttp://hdl.handle.net/11603/40395
dc.language.isoen
dc.publisher American Association for the Advancement of Science
dc.relation.isAvailableAtThe University of Maryland, Baltimore County (UMBC)
dc.relation.ispartofUMBC Physics Department
dc.rightsAttribution-NonCommercial 4.0 International
dc.rights.urihttps://creativecommons.org/licenses/by-nc/4.0/
dc.subjectNonlinear Sciences - Pattern Formation and Solitons
dc.subjectUMBC Quantum Optics of Correlated Materials group
dc.subjectPhysics - Optics
dc.titleOn-chip multi-timescale spatiotemporal optical synchronization
dc.typeText
dcterms.creatorhttps://orcid.org/0000-0002-2757-6320

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