Enhanced four-wave mixing with nonlinear plasmonic metasurfaces
arXiv:1606.01121 · doi:10.1038/srep28746
Abstract
Plasmonic metasurfaces provide an effective way to increase the efficiency of several nonlinear processes while maintaining nanoscale dimensions. In this work, nonlinear metasurfaces based on film-coupled silver nanostripes loaded with Kerr nonlinear material are proposed to achieve efficient four-wave mixing (FWM). Highly localized plasmon resonances are formed in the nanogap between the metallic film and nanostripes. The local electric field is dramatically enhanced in this subwavelength nanoregion. These properties combined with the relaxed phase matching condition due to the ultrathin area lead to a giant FWM efficiency, which is enhanced by nineteen orders of magnitude compared to a bare silver screen. In addition, efficient visible and low-THz sources can be constructed based on the proposed nonlinear metasurfaces. The FWM generated coherent wave has a directional radiation pattern and its output power is relatively insensitive to the incident angles of the excitation sources. This radiated power can be further enhanced by increasing the excitation power. The dielectric nonlinear material placed in the nanogap is mainly responsible for the ultrastrong FWM response. Compact and efficient wave mixers and optical sources spanning different frequency ranges are envisioned to be designed based on the proposed nonlinear metasurface designs.
References in corpus (1)
Cited by in corpus (11)
- Enhanced third harmonic generation with graphene metasurfaces
- Hybrid Graphene-Plasmonic Gratings to Achieve Enhanced Nonlinear Effects at Terahertz Frequencies
- Efficient single-photon pair generation by spontaneous parametric down-conversion in nonlinear plasmonic metasurfaces
- Nonreciprocal Transmission in Nonlinear PT-Symmetric Metamaterials Using Epsilon-near-Zero Media Doped with Defects
- Nonreciprocal transmission of electromagnetic waves with nonlinear active plasmonic metasurfaces
- Recent advances in terahertz photonic technologies based on graphene and their applications
- Origin of third harmonic generation in plasmonic nanoantennas
- A Time Domain Volume Integral Equation Solver to Analyze Electromagnetic Scattering from Nonlinear Dielectric Objects
- Giant ultrafast Kerr effect in type-II superconductors
- Unraveling the temperature dynamics and hot electron generation in tunable gap-plasmon metasurface absorbers
- Leveraging Plasmonic Nanocavity Arrays Forming Metasurfaces to Boost Second Harmonic Generation due to Surface Effects