Research paperExperimental CharacterizationComputational MultiscaleIntegrated nanophotonic polarizers in silicon waveguides and ring resonators using graphene oxide 2D filmsDavid J. Moss2024·10.1063/5.0221793·arXiv:2408.02673AbstractWe experimentally demonstrate waveguide and microring resonator (MRR) polarizers by integrating 2D graphene oxide (GO) films onto silicon (Si) photonic devices. The 2D GO films with highly anisotropic light absorption are on-chip integrated with precise control over their thicknesses and sizes. Detailed measurements are performed for the fabricated devices with different GO film thicknesses, coating lengths, and Si waveguide widths. The results show that a maximum polarization-dependent loss (PDL) of ~17 dB is achieved for the hybrid waveguides, and the hybrid MRRs achieved a maximum polarization extinction ratio (PER) of ~10 dB. We also characterize the wavelength- and power-dependent response for these polarizers. The former demonstrates a broad operation bandwidth of over ~100 nm, and the latter verifies performance improvement enabled by photo-thermal changes in GO films. By fitting the experimental results with theoretical simulations, we find that the anisotropy in the loss of GO films dominates the polarization selectivity of these devices. These results highlight the strong potential of 2D GO films for realizing high-performance polarization selective devices in Si photonic platform.Read more
Hybrid silicon nanowire waveguide polarizer coated with layer-by-layer GO films; devices vary by GO layer number, coating length, and waveguide width.4 preparations4 characterizations7 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand
Hybrid microring resonator polarizer integrated with GO films on a silicon photonic platform.4 preparations4 characterizations3 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand
Research paperExperimental CharacterizationComputational MultiscaleIntegrated nanophotonic polarizers in silicon waveguides and ring resonators using graphene oxide 2D filmsDavid J. Moss2024·10.1063/5.0221793·arXiv:2408.02673AbstractWe experimentally demonstrate waveguide and microring resonator (MRR) polarizers by integrating 2D graphene oxide (GO) films onto silicon (Si) photonic devices. The 2D GO films with highly anisotropic light absorption are on-chip integrated with precise control over their thicknesses and sizes. Detailed measurements are performed for the fabricated devices with different GO film thicknesses, coating lengths, and Si waveguide widths. The results show that a maximum polarization-dependent loss (PDL) of ~17 dB is achieved for the hybrid waveguides, and the hybrid MRRs achieved a maximum polarization extinction ratio (PER) of ~10 dB. We also characterize the wavelength- and power-dependent response for these polarizers. The former demonstrates a broad operation bandwidth of over ~100 nm, and the latter verifies performance improvement enabled by photo-thermal changes in GO films. By fitting the experimental results with theoretical simulations, we find that the anisotropy in the loss of GO films dominates the polarization selectivity of these devices. These results highlight the strong potential of 2D GO films for realizing high-performance polarization selective devices in Si photonic platform.Read more
Hybrid silicon nanowire waveguide polarizer coated with layer-by-layer GO films; devices vary by GO layer number, coating length, and waveguide width.4 preparations4 characterizations7 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand
Hybrid microring resonator polarizer integrated with GO films on a silicon photonic platform.4 preparations4 characterizations3 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand
Research paperExperimental CharacterizationComputational MultiscaleIntegrated nanophotonic polarizers in silicon waveguides and ring resonators using graphene oxide 2D filmsDavid J. Moss2024·10.1063/5.0221793·arXiv:2408.02673AbstractWe experimentally demonstrate waveguide and microring resonator (MRR) polarizers by integrating 2D graphene oxide (GO) films onto silicon (Si) photonic devices. The 2D GO films with highly anisotropic light absorption are on-chip integrated with precise control over their thicknesses and sizes. Detailed measurements are performed for the fabricated devices with different GO film thicknesses, coating lengths, and Si waveguide widths. The results show that a maximum polarization-dependent loss (PDL) of ~17 dB is achieved for the hybrid waveguides, and the hybrid MRRs achieved a maximum polarization extinction ratio (PER) of ~10 dB. We also characterize the wavelength- and power-dependent response for these polarizers. The former demonstrates a broad operation bandwidth of over ~100 nm, and the latter verifies performance improvement enabled by photo-thermal changes in GO films. By fitting the experimental results with theoretical simulations, we find that the anisotropy in the loss of GO films dominates the polarization selectivity of these devices. These results highlight the strong potential of 2D GO films for realizing high-performance polarization selective devices in Si photonic platform.Read more
Hybrid silicon nanowire waveguide polarizer coated with layer-by-layer GO films; devices vary by GO layer number, coating length, and waveguide width.4 preparations4 characterizations7 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand
Hybrid microring resonator polarizer integrated with GO films on a silicon photonic platform.4 preparations4 characterizations3 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand
Research paperExperimental CharacterizationComputational MultiscaleIntegrated nanophotonic polarizers in silicon waveguides and ring resonators using graphene oxide 2D filmsDavid J. Moss2024·10.1063/5.0221793·arXiv:2408.02673AbstractWe experimentally demonstrate waveguide and microring resonator (MRR) polarizers by integrating 2D graphene oxide (GO) films onto silicon (Si) photonic devices. The 2D GO films with highly anisotropic light absorption are on-chip integrated with precise control over their thicknesses and sizes. Detailed measurements are performed for the fabricated devices with different GO film thicknesses, coating lengths, and Si waveguide widths. The results show that a maximum polarization-dependent loss (PDL) of ~17 dB is achieved for the hybrid waveguides, and the hybrid MRRs achieved a maximum polarization extinction ratio (PER) of ~10 dB. We also characterize the wavelength- and power-dependent response for these polarizers. The former demonstrates a broad operation bandwidth of over ~100 nm, and the latter verifies performance improvement enabled by photo-thermal changes in GO films. By fitting the experimental results with theoretical simulations, we find that the anisotropy in the loss of GO films dominates the polarization selectivity of these devices. These results highlight the strong potential of 2D GO films for realizing high-performance polarization selective devices in Si photonic platform.Read more
Hybrid silicon nanowire waveguide polarizer coated with layer-by-layer GO films; devices vary by GO layer number, coating length, and waveguide width.4 preparations4 characterizations7 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand
Hybrid microring resonator polarizer integrated with GO films on a silicon photonic platform.4 preparations4 characterizations3 properties3 figuresExperimentalGOStudied MaterialSiSubstrate / DielectricSiO₂Substrate / Dielectricsilicon-on-insulatorSubstrate / DielectricExpand