English

Fabrication-constrained nanophotonic inverse design

Optics 2017-03-28 v3

Abstract

A major difficulty in applying computational design methods to nanophotonic devices is ensuring that the resulting designs are fabricable. Here, we describe a general inverse design algorithm for nanophotonic devices that directly incorporates fabrication constraints. To demonstrate the capabilities of our method, we designed a spatial-mode demultiplexer, wavelength demultiplexer, and directional coupler. We also designed and experimentally demonstrated a compact, broadband 1×31 \times 3 power splitter on a silicon photonics platform. The splitter has a footprint of only 3.8×2.5 μm3.8 \times 2.5~\mathrm{\mu m}, and is well within the design rules of a typical silicon photonics process, with a minimum radius of curvature of 100 nm100~\mathrm{nm}. Averaged over the designed wavelength range of 14001700 nm1400 - 1700~\mathrm{nm}, our splitter has a measured insertion loss of 0.642±0.057 dB0.642 \pm 0.057 ~\mathrm{dB} and power uniformity of 0.641±0.054 dB0.641 \pm 0.054~\mathrm{dB}.

Keywords

Cite

@article{arxiv.1612.03222,
  title  = {Fabrication-constrained nanophotonic inverse design},
  author = {Alexander Y. Piggott and Jan Petykiewicz and Logan Su and Jelena Vučković},
  journal= {arXiv preprint arXiv:1612.03222},
  year   = {2017}
}

Comments

13 pages, 8 figures

R2 v1 2026-06-22T17:19:15.598Z