General Design Flow for Waveguide Bragg Gratings

Brückerhoff-Plückelmann, Frank; Buskasper, Tim; Römer, Julius; Krämer, Linus; Malik, Bilal; McRae, Liam; Kürpick, Linus; Palitza, Simon; Schuck, Carsten; Pernice, Wolfram

Forschungsartikel in Online-Sammlung | Preprint | Peer reviewed

Zusammenfassung

Bragg gratings are crucial components in passive photonic signal processing, with wide-ranging applications including biosensing, pulse compression, photonic computing, and addressing. However, the design of integrated waveguide Bragg gratings (WBGs) for arbitrary wavelengths presents significant challenges, especially when dealing with highly asymmetric layer stacks and large refractive index contrasts. Convenient approximations used for fiber Bragg gratings generally break down in these cases, resulting in nontrivial design challenges. In this work, we introduce a general simulation and design framework for WBGs, which combines coupled mode theory with three-dimensional finite-element method eigenfrequency computations. This approach allows for precise design and optimization of WBGs across a broad range of device layer stacks. The design flow is applicable to further layer stacks across nearly all wavelengths of interest, given that the coupling between the forward and backward propagating mode is dominant.

Details zur Publikation

Name des RepositoriumsNanophotonics
Statusakzeptiert / in Druck (unveröffentlicht)
Veröffentlichungsjahr2025 (28.01.2025)
DOI10.1515/nanoph-2024-0498
Link zum Volltexthttps://www.degruyter.com/document/doi/10.1515/nanoph-2024-0498/html
Stichwörterwaveguide Bragg gratings; integrated signal processing; photonic longpass filter

Autor*innen der Universität Münster

Brückerhoff-Plückelmann, Frank
Professur für Experimentalphysik mit der Ausrichtung Physik responsiver Nanosysteme (Prof. Pernice)
Krämer, Martin Linus
Professur für Experimentalphysik mit der Ausrichtung Physik responsiver Nanosysteme (Prof. Pernice)
Pernice, Wolfram
Professur für Experimentalphysik mit der Ausrichtung Physik responsiver Nanosysteme (Prof. Pernice)
Center for Soft Nanoscience (SoN)
Münster Nanofabrication Facility, MNF (MNF)
Schuck, Carsten
Professur für Experimentelle Physik (Prof. Schuck)
Center for Soft Nanoscience (SoN)
Münster Nanofabrication Facility, MNF (MNF)
Department für Quantentechnologie