The control of harmonic generation is essential for advanced nonlinear nanophotonic devices. Here, we propose a hybrid nonlinear metasurface combining graphene, lithium niobate (LiNbO3), and silicon dioxide (SiO2) to enable simultaneous second-and third-harmonic generation (SHG and THG) mediated by guided-mode resonances (GMRs). The structure consists of graphene-lithium niobate pillars arranged on a glass substrate and exploits both the anisotropic optical response and the second-order nonlinearity of LiNbO3 together with the third-order nonlinear response of graphene and SiO2. By engineering the metasurface geometry, distinct GMR branches are identified in the linear optical response and accurately captured by an analytical effective-index model combined with the grating equation. Nonlinear simulations reveal that both SHG and THG efficiencies are enhanced at the GMR conditions, with a simultaneous enhancement observed in the vicinity of the crossing point between the TE0 and TM1 modes. These results highlight the potential of the proposed hybrid metasurface for compact, multi-resonant nonlinear optical devices enabled by geometrical tailoring of guided-mode resonances. (c) 2026 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
Dual-harmonic generation in a hybrid graphene-lithium niobate nonlinear metasurface / Ullah, S., Marasco, I., D'Orazio, A., Ornigotti, M., Magno, G.. - In: OPTICS EXPRESS. - ISSN 1094-4087. - ELETTRONICO. - 34:13(2026), pp. 24466-24484. [10.1364/OE.596715]
Dual-harmonic generation in a hybrid graphene-lithium niobate nonlinear metasurface
Ullah S.;Marasco I.;D'Orazio A.;Magno G.
2026
Abstract
The control of harmonic generation is essential for advanced nonlinear nanophotonic devices. Here, we propose a hybrid nonlinear metasurface combining graphene, lithium niobate (LiNbO3), and silicon dioxide (SiO2) to enable simultaneous second-and third-harmonic generation (SHG and THG) mediated by guided-mode resonances (GMRs). The structure consists of graphene-lithium niobate pillars arranged on a glass substrate and exploits both the anisotropic optical response and the second-order nonlinearity of LiNbO3 together with the third-order nonlinear response of graphene and SiO2. By engineering the metasurface geometry, distinct GMR branches are identified in the linear optical response and accurately captured by an analytical effective-index model combined with the grating equation. Nonlinear simulations reveal that both SHG and THG efficiencies are enhanced at the GMR conditions, with a simultaneous enhancement observed in the vicinity of the crossing point between the TE0 and TM1 modes. These results highlight the potential of the proposed hybrid metasurface for compact, multi-resonant nonlinear optical devices enabled by geometrical tailoring of guided-mode resonances. (c) 2026 Optica Publishing Group under the terms of the Optica Open Access Publishing AgreementI documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

