Integrated polarizers based on graphene oxide in waveguides and ring resonators
arXiv:1907.06861 · doi:10.1002/lpor.201900056
Abstract
Integrated waveguide polarizers and polarization-selective micro-ring resonators (MRRs) incorporated with graphene oxide (GO) films are experimentally demonstrated. CMOS-compatible doped silica waveguides and MRRs with both uniformly coated and patterned GO films are fabricated based on a large-area, transfer-free, layer-by-layer GO coating method that yields precise control of the film thickness. Photolithography and lift-off processes are used to achieve photolithographic patterning of GO films with precise control of the placement and coating length. Detailed measurements are performed to characterize the performance of the devices versus GO film thickness and coating length as a function of polarization, wavelength and power. A high polarization dependent loss of ~53.8 dB is achieved for the waveguide coated with 2-mm-long patterned GO films. It is found that intrinsic film material loss anisotropy dominates the performance for less than 20 layers whereas polarization dependent mode overlap dominates for thicker layers. For the MRRs, the GO coating length is reduced to 50 microns, yielding a ~ 8.3-dB polarization extinction ratio between TE and TM resonances. These results offer interesting physical insights and trends of the layered GO films and demonstrate the effectiveness of introducing GO films into photonic integrated devices to realize high-performance polarization selective components.
15 pages, 8 figures, 54 references
References in corpus (1)
Cited by in corpus (17)
- Graphene oxide: new opportunities for optoelectronic, electronic and photonic chips
- Graphene oxide films for ultra-flat optics and linear and nonlinear integrated photonic circuits
- Enhanced four-wave-mixing with 2D layered graphene oxide films integrated with CMOS compatible micro-ring resonators
- Fabrication methods for integrating 2D materials
- Design of silicon waveguides for Kerr nonlinear optical performance with graphene oxide films
- Theoretical design study of FWM in silicon nitride waveguides with integrated graphene oxide films
- Sagnac interference in integrated photonics for reflection mirrors, gyroscopes, filters, and wavelength interleavers
- Enhanced self-phase modulation in silicon nitride waveguides integrated with 2D graphene oxide films
- Enhanced spectral broadening via self-phase modulation with femtosecond optical pulses in silicon nanowires integrated with 2D graphene oxide films
- Photo-thermal tuning of graphene oxide coated integrated optical waveguides
- Enhancing the third-order optical nonlinear performance in CMOS devices with integrated 2D graphene oxide films
- Ultra-high bandwidth fiber-optic data transmission with a single chip source
- Enhanced nonlinear optical figure-of-merit at 1550nm for silicon nanowires integrated with graphene oxide layered films
- Design of microring resonators integrated with 2D graphene oxide films for four-wave mixing
- Enhanced four-wave-mixing and 3rd order optical nonlinearity in SiN nanowires integrated with graphene oxide films
- High 3rd Order Optical Kerr Nonlinearity of PdSe2 Di-chalcogenide 2D Films for Nonlinear Photonic Chips
- Large and negative Kerr nonlinearity in PdSe2 dichalcogenide 2D films