Relaxed Phase-Matching Constraints in Zero-Index Waveguides

The utility of all parametric nonlinear optical processes is hampered by phase-matching requirements. Quasi-phase-matching, birefringent phase matching, and higher-order-mode phase matching have all been developed to address this constraint, but the methods demonstrated to date suffer from the incon...

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Veröffentlicht in:Physical review letters 2022-05, Vol.128 (20), p.203902-203902, Article 203902
Hauptverfasser: Gagnon, Justin R, Reshef, Orad, Espinosa, Daniel H G, Alam, M Zahirul, Vulis, Daryl I, Knall, Erik N, Upham, Jeremy, Li, Yang, Dolgaleva, Ksenia, Mazur, Eric, Boyd, Robert W
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Sprache:eng
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Zusammenfassung:The utility of all parametric nonlinear optical processes is hampered by phase-matching requirements. Quasi-phase-matching, birefringent phase matching, and higher-order-mode phase matching have all been developed to address this constraint, but the methods demonstrated to date suffer from the inconvenience of only being phase matched for a single, specific arrangement of beams, typically copropagating, resulting in cumbersome experimental configurations and large footprints for integrated devices. Here, we experimentally demonstrate that these phase-matching requirements may be satisfied in a parametric nonlinear optical process for multiple, if not all, configurations of input and output beams when using low-index media. Our measurement constitutes the first experimental observation of direction-independent phase matching for a medium sufficiently long for phase matching to be relevant. We demonstrate four-wave mixing from spectrally distinct co- and counterpropagating pump and probe beams, the backward generation of a nonlinear signal, and excitation by an out-of-plane probe beam. These results explicitly show that the unique properties of low-index media relax traditional phase-matching constraints, which can be exploited to facilitate nonlinear interactions and miniaturize nonlinear devices, thus adding to the established exceptional properties of low-index materials.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.128.203902