Theoretical and computational analysis of second- and third-harmonic generation in periodically patterned graphene and transition-metal dichalcogenide monolayers
Martin Weismann, Nicolae C. Panoiu

TL;DR
This paper presents a new numerical method for accurately modeling linear and nonlinear optical effects in nanostructured 2D materials like graphene and TMDCs within periodic photonic structures, enabling better design of optoelectronic devices.
Contribution
It introduces an efficient, rigorous computational approach that incorporates nonlinear responses of 2D materials into periodic photonic structures, improving accuracy over previous methods.
Findings
Numerical analysis of optical spectra of graphene and TMDC monolayers.
Enhanced second- and third-harmonic generation in heteromaterials.
Interaction of geometric and material resonances in structured waveguides.
Abstract
Remarkable optical and electrical properties of two-dimensional (2D) materials, such as graphene and transition-metal dichalcogenide (TMDC) monolayers, offer vast technological potential for novel and improved optoelectronic nanodevices, many of which relying on nonlinear optical effects in these 2D materials. This article introduces a highly effective numerical method for efficient and accurate description of linear and nonlinear optical effects in nanostructured 2D materials embedded in periodic photonic structures containing regular three-dimensional (3D) optical materials, such as diffraction gratings and periodic metamaterials. The proposed method builds upon the rigorous coupled-wave analysis and incorporates the nonlinear optical response of 2D materials by means of modified electromagnetic boundary conditions. This allows one to reduce the mathematical framework of the numerical…
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