1D Photonic Band Gap Atlas, Formula Extension and Design Applications

Fuente: arXiv
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Auteurs principaux: Pardo, Oscar D. H., Rey-González, R. R.
Format: Preprint
Publié: 2024
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author Pardo, Oscar D. H.
Rey-González, R. R.
author_facet Pardo, Oscar D. H.
Rey-González, R. R.
contents The design and development of new photonic devices for technological applications requires a deep understanding of the effect of structural properties on the resulting band gap size and its position. Here, we perform a theoretical study of behavior of the photonic band gap sizes, positions and percentages under variations of the parameters characterizing binary (two materials), ternary (three materials) and linear dielectric grating multilayer structures. The resulting band gap atlas show that binary systems may suffice for most applications but ternary systems may add additional flexibility in design if needed. Linear gratings show a regular pattern for all gaps studied, this regularity was able to be reproduced with only few materials involved. The position of the gaps showed a very monotonous behavior for all calculations performed. Finally, additional extensions of formulas commonly used in the design of Bragg mirrors/reflectors using binary materials were proposed with their corresponding limitations discussed. These results can be seen as a technological horizon for photonic device development.
format Preprint
id arxiv_https___arxiv_org_abs_2405_13633
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle 1D Photonic Band Gap Atlas, Formula Extension and Design Applications
Pardo, Oscar D. H.
Rey-González, R. R.
Optics
The design and development of new photonic devices for technological applications requires a deep understanding of the effect of structural properties on the resulting band gap size and its position. Here, we perform a theoretical study of behavior of the photonic band gap sizes, positions and percentages under variations of the parameters characterizing binary (two materials), ternary (three materials) and linear dielectric grating multilayer structures. The resulting band gap atlas show that binary systems may suffice for most applications but ternary systems may add additional flexibility in design if needed. Linear gratings show a regular pattern for all gaps studied, this regularity was able to be reproduced with only few materials involved. The position of the gaps showed a very monotonous behavior for all calculations performed. Finally, additional extensions of formulas commonly used in the design of Bragg mirrors/reflectors using binary materials were proposed with their corresponding limitations discussed. These results can be seen as a technological horizon for photonic device development.
title 1D Photonic Band Gap Atlas, Formula Extension and Design Applications
topic Optics
url https://arxiv.org/abs/2405.13633