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Waveguide-Integrated Mid-Infrared Photodetection using Graphene on a Scalable Chalcogenide Glass Platform

Optics 2022-07-27 v1 Applied Physics

Abstract

The development of compact and fieldable mid-infrared (mid-IR) spectroscopy devices represents a critical challenge for distributed sensing with applications from gas leak detection to environmental monitoring. Recent work has focused on mid-IR photonic integrated circuit (PIC) sensing platforms and waveguide-integrated mid-IR light sources and detectors based on semiconductors such as PbTe, black phosphorus and tellurene. However, material bandgaps and reliance on SiO2_2 substrates limit operation to wavelengths λ4μm\lambda\lesssim4\,\mu\textrm{m}. Here we overcome these challenges with a chalcogenide glass-on-CaF2_2 PIC architecture incorporating split-gate photothermoelectric graphene photodetectors. Our design extends operation to λ=5.2μm\lambda=5.2\,\mu\textrm{m} with a Johnson noise-limited noise-equivalent power of 1.1nW/Hz1/21.1\,\mathrm{nW}/\mathrm{Hz}^{1/2}, no fall-off in photoresponse up to f=1MHzf = 1\,\mathrm{MHz}, and a predicted 3-dB bandwidth of f3dB>1GHzf_{3\textrm{dB}}>1\,\mathrm{GHz}. This mid-IR PIC platform readily extends to longer wavelengths and opens the door to applications from distributed gas sensing and portable dual comb spectroscopy to weather-resilient free space optical communications.

Keywords

Cite

@article{arxiv.2112.14857,
  title  = {Waveguide-Integrated Mid-Infrared Photodetection using Graphene on a Scalable Chalcogenide Glass Platform},
  author = {Jordan Goldstein and Hongtao Lin and Skylar Deckoff-Jones and Marek Hempel and Ang-Yu Lu and Kathleen A. Richardson and Tomas Palacios and Jing Kong and Juejun Hu and Dirk Englund},
  journal= {arXiv preprint arXiv:2112.14857},
  year   = {2022}
}

Comments

15 pages, 11 figures