English

Graphene thermal infrared emitters integrated into silicon photonic waveguides

Optics 2025-05-06 v1 Applied Physics

Abstract

Cost-efficient and easily integrable broadband mid-infrared (mid-IR) sources would significantly enhance the application space of photonic integrated circuits (PICs). Thermal incandescent sources are superior to other common mid-IR emitters based on semiconductor materials in terms of PIC compatibility, manufacturing costs, and bandwidth. Ideal thermal emitters would radiate directly into the desired modes of the PIC waveguides via near-field coupling and would be stable at very high temperatures. Graphene is a semi-metallic two-dimensional material with comparable emissivity to thin metallic thermal emitters. It allows maximum coupling into waveguides by placing it directly into their evanescent fields. Here, we demonstrate graphene mid-IR emitters integrated with photonic waveguides that couple directly into the fundamental mode of silicon waveguides designed for a wavelength of 4,2 {\mu}m relevant for CO2{_2} sensing. High broadband emission intensity is observed at the waveguide-integrated graphene emitter. The emission at the output grating couplers confirms successful coupling into the waveguide mode. Thermal simulations predict emitter temperatures up to 1000{\deg}C, where the blackbody radiation covers the mid-IR region. A coupling efficiency {\eta}, defined as the light emitted into the waveguide divided by the total emission, of up to 68% is estimated, superior to data published for other waveguide-integrated emitters.

Keywords

Cite

@article{arxiv.2308.04046,
  title  = {Graphene thermal infrared emitters integrated into silicon photonic waveguides},
  author = {Nour Negm and Sarah Zayouna and Shayan Parhizkar and Pen-Sheng Lin and Po-Han Huang and Stephan Suckow and Stephan Schroeder and Eleonora De Luca and Floria Ottonello Briano and Arne Quellmalz and Georg S. Duesberg and Frank Niklaus and Kristinn B. Gylfason and Max C. Lemme},
  journal= {arXiv preprint arXiv:2308.04046},
  year   = {2025}
}

Comments

24 pages