18 February 2023 Parallel computing for modeling multilayer photonic crystals
Andreas T. D. Richardson, Shavaiz I. Mir, Stephen M. Morris, Steve J. Elston, Ali K. Yetisen, Yunuen Montelongo
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Abstract

A simulation framework is developed for the two-dimensional finite-difference time-domain to model multilayer photonic crystal structures. The framework includes the recording process in a photosensitive material through a coherent light source and then a subsequent interrogation with a broadband spectrum. Moreover, the tunable response of the photonic crystal is simulated for different film thicknesses (recorded from 5 to 20 μm), refractive indices contrast (ranging from 4% to 24%), film expansions (interrogated with expansions ranging 110% to 160%), and lattice spacings (recorded with wavelengths from 360 to 560 nm). A parallelization method was implemented in a computer cluster to alleviate the required high computational demand. Through this simulation framework, it is now possible to retrieve relevant information about realistic photosensitive multilayer structures. This method will support the design of multilayer structures utilized in sensors, lasers, and other functional nanostructured photonic devices.

© 2023 Society of Photo-Optical Instrumentation Engineers (SPIE)
Andreas T. D. Richardson, Shavaiz I. Mir, Stephen M. Morris, Steve J. Elston, Ali K. Yetisen, and Yunuen Montelongo "Parallel computing for modeling multilayer photonic crystals," Journal of Nanophotonics 17(1), 016007 (18 February 2023). https://doi.org/10.1117/1.JNP.17.016007
Received: 21 November 2022; Accepted: 26 January 2023; Published: 18 February 2023
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KEYWORDS
Photonic crystals

Refractive index

Multilayers

Diffraction

Film thickness

Computer simulations

Modeling

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