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Understanding the nonlinear optical response of epsilon near zero materials in the time-domain

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arxiv 2110.14806 v1 pith:OVRIZPUY submitted 2021-10-27 physics.optics physics.comp-ph

Understanding the nonlinear optical response of epsilon near zero materials in the time-domain

classification physics.optics physics.comp-ph
keywords nonlinearopticalresponsematerialstime-domainconfinementcontrolfilms
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The promise of active nanophotonics technology relies on the confinement and control of light at the nanoscale. Confinement via plasmonics, dielectric resonators, and waveguides can be complemented with materials whose optical properties can be controlled using nonlinear effects. Transparent conducting oxides (TCOs) exhibit strong optical nonlinearities in their near zero permittivity spectral region, on the femtosecond time-scale. Harnessing full control over the nonlinear response requires a deeper understanding of the process. To achieve this, we develop a self-consistent time-domain model for the nonlinear optical response of TCOs and implement it into a three-dimensional finite-difference time-domain code. We compare and tune our simulation tools against recently published experimental results for intense laser irradiation of thin indium tin oxide (ITO) films. Finally, by simulating intense laser irradiation of ITO-based plasmonic metasurfaces, we demonstrate the full power of our approach. As expected, we find validating the significant enhancement of the nonlinear response of an ITO-based metasurface over bare ITO thin films. Our work thus enables quantitative nanophotonics design with epsilon-near-zero materials.

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