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Low-Loss Multimode Waveguide Bends with Direct Laser Writing in Polymer.

Tigran Baghdasaryan1, Neshteh Kourian1,2, Mushegh Rafayelyan2

  • 1Vrije Universiteit Brussel, Department of Applied Physics and Photonics, Brussels Photonics, Pleinlaan 2, 1050 Brussel, Belgium.

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Summary

Designing compact integrated photonic circuits is easier with optimized waveguide bends. Smaller waveguides (2-4 µm) and lower Bézier parameters minimize loss for 90° and S-bends using two-photon polymerization direct laser writing.

Keywords:
2 photon polymerizationBézier shape bendsdirect laser writingmultimode waveguides

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Area of Science:

  • Integrated photonics
  • Nanofabrication
  • Computational electromagnetics

Background:

  • Waveguide bends are essential for routing in integrated photonic circuits.
  • Designing compact bends in air-clad polymer waveguides via two-photon polymerization direct laser writing (2PP-DLW) is challenging due to multimode effects.

Purpose of the Study:

  • To systematically model and optimize Bézier-shaped 90° and S-bends for 2PP-DLW polymer waveguides.
  • To establish design guidelines for achieving low loss and high compactness in 3D photonic circuits.

Main Methods:

  • Utilized a variational Finite-Difference Time-Domain (FDTD) solver for systematic modeling.
  • Investigated the impact of bend span, curvature, and waveguide dimensions (widths 2-4 µm) on optical performance.
  • Explored Bézier parameters (B = 0-0.2) to control bend shape.

Main Results:

  • Smaller waveguides (2-4 µm) and lower Bézier parameters (B=0-0.2) significantly reduce bend losses.
  • Achieved near-unity transmission for 90° bends with spans of 20-30 µm.
  • Demonstrated feasibility of aspect ratios below 1 for compact S-bends.
  • Identified a 2 µm waveguide width as an optimal balance between performance and fabrication limits.

Conclusions:

  • Optimized design rules enable low-loss, space-efficient 3D photonic circuits using 2PP-DLW.
  • Simulation-driven optimization is crucial for maximizing the potential of 2PP-DLW technology.
  • Findings provide insights for future integrated photonic device architectures.