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    Plasmon polariton assisted second-harmonic generation in graphene

    João M. Alendouro Pinho1, Simão S. Cardoso2, Yuliy V. Bludov2,*, João M. Viana Parente Lopes1, Vladimir V. Konotop3, Joel D. Cox4,5, and Nuno M. R. Peres2,4,6

    • 1Physics Center of Minho and Porto Universities (CF-UM-UP), Laboratory of Physics for Materials and Emergent Technologies (LaPMET), and Faculty of Science, University of Porto, Campo Alegre, 4169-007 Porto, Portugal
    • 2Physics Center of Minho and Porto Universities (CF-UM-UP), Laboratory of Physics for Materials and Emergent Technologies (LaPMET), and Department of Physics, University of Minho, Campus of Gualtar, 4710-057 Braga, Portugal
    • 3Department of Physics, Center for Theoretical and Computational Physics, University of Lisbon, Campo Grande, C8, 1749-016 Lisbon, Portugal
    • 4POLIMA—Center for Polariton-driven Light–Matter Interactions, University of Southern Denmark, Campusvej 55, DK-5230 Odense M, Denmark
    • 5Danish Institute for Advanced Study, University of Southern Denmark, Campusvej 55, DK-5230 Odense M, Denmark
    • 6International Iberian Nanotechnology Laboratory (INL), Av. Mestre José Veiga, 4715-330 Braga, Portugal

    • *Contact author: bludov@fisica.uminho.pt

    Phys. Rev. B 112, 195432 – Published 21 November, 2025

    DOI: https://doi.org/10.1103/jxtp-18tx

    Abstract

    In this paper we present a theoretical examination of second-harmonic generation (SHG) in a graphene monolayer integrated within an attenuated total internal reflection (ATR) configuration. By embedding graphene in this optical setup, we explore the enhancement in the nonlinear optical response, particularly focusing on the efficiency of SHG. Our analysis reveals that the excitation of surface plasmon-polaritons (SPPs) plays a central role in significantly boosting the efficiency of SHG. The unique electronic properties of graphene, combined with the resonant characteristics of SPPs, create a synergistic effect that amplifies the nonlinear optical signals. This enhancement is attributed to the strong field confinement and the resonant nature of SPPs, which effectively increase the interaction between the incident light and the graphene monolayer. Furthermore, we analyze the underlying mechanisms that govern this process, providing a comprehensive theoretical framework that elucidates the interplay between graphene's electronic structure and the optical fields. Our findings suggest that the ATR scheme not only facilitates the excitation of SPPs but also optimizes the conditions for SHG.

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