Skip to main navigation Skip to search Skip to main content

Simulation Framework for Athermal Silicon Nitride Waveguide Design

Research output: Contribution to conferencePosterAcademic

Abstract

We present a simulation framework to engineer athermal integrated waveguides in silicon nitride photonic platforms. Starting from realistic Si3N4/SiO2 stacks with optional overlay layers, we compute the temperature dependence of the guided modes by combining electromagnetic eigenmode solvers with temperature-dependent refractive index models. Thermo-optic finite-element simulations provide the local temperature distribution allowing us to find contributions to the effective index shift. By sweeping core geometry, cladding composition, and overlay thickness, we map the design space where the net thermo-optic coefficient of the fundamental mode approaches or crosses zero, and we quantify the spectral bandwidth over which this athermal condition is maintained. The methodology provides a practical, simulation-driven route to identify and optimize athermal Si3N4/SiO2 waveguide geometries for temperature-stable operation in precision photonic integrated circuits.
Original languageEnglish
Publication statusPublished - 4 Mar 2026
EventDPG Spring Meeting of the Atomic, Molecular, Quantum Optics and Photonics Section, SAMOP 2026 - Johannes Gutenberg University Mainz, Mainz, Germany
Duration: 1 Mar 20266 Mar 2026
https://mainz26.dpg-tagungen.de/

Conference

ConferenceDPG Spring Meeting of the Atomic, Molecular, Quantum Optics and Photonics Section, SAMOP 2026
Abbreviated titleSAMOP 2026
Country/TerritoryGermany
CityMainz
Period1/03/266/03/26
Internet address

Fingerprint

Dive into the research topics of 'Simulation Framework for Athermal Silicon Nitride Waveguide Design'. Together they form a unique fingerprint.

Cite this