4.7 Article

All-Dielectric Graphene-induced T-Slot Waveguide Electro-Optic Modulator With Polarization-Independent Operation

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSTQE.2021.3050569

Keywords

Modulation; Graphene; Optical waveguides; Chemicals; Bandwidth; Optical device fabrication; Silicon; Graphene; modulators; T-slot waveguide; polarization; bandwidth

Funding

  1. start-up foundation for introducing talent of Nanjing University of Information Science and Technology (NUIST)
  2. National Natural Science Foundation of China [11605090]
  3. Natural Science Foundation of the Jiangsu Province [BK20191396]
  4. IT4Innovations National Supercomputing Center -Path to exascale project [EF16_013/0001791]
  5. project Nanotechnology -PhD study in the frame of Double International Guidance [CZ.02.2.69/0.0/0.0/16_018/0002708]

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The study introduces a graphene-based T-slot waveguide modulator that achieves polarization-independent modulation. Through optimizing key characteristic parameters, the modulator demonstrates excellent modulation performance and compact structural design.
Developing efficient techniques to realize polarization-independent modulators nowadays is still important for on-chip photonic circuits. Here, we propose and theoretically demonstrate a graphene-based T-slot waveguide modulator, which simultaneously supports the TE and TM polarized modes, offering a greater possibility to achieve the polarization-independent modulation. The modulation performance is comprehensively studied in terms of attenuation loss, insertion loss, modulation depth, normalized mode area, bandwidth and power consumption. Optimizations of key characteristic parameters illustrate that the modulator not only offers a mode confinement beyond the diffraction limit (0.35 dB/mu m, a insertion loss (IL) of <0.1 dB/mu m and a MD discrepancy of <0.012 dB/mu m for both polarized modes covering the whole S, C and L bands. Particularly, the modulator possesses a compact footprint of 11.6 mu m(2), a 3-dB modulation bandwidth of 50 GHz and a power consumption per bit of 2.07 pJ/bit based on theoretical predictions. The polarization-independent operation is also quite robust against the possible fabrication perturbations. Our work may inspire new potential for developing the integrated modulators and opto-electronic interconnects in the advanced polarization-diversity circuits.

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