Photonic bandgap properties of hyperuniform systems self-assembled in a microfluidic channel

Fuente: arXiv
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Autori principali: Traktman, Lily, Yu, Bowen, Vasquez, Isa, Ospov, Stanislav, Dreyfus, Remi, Man, Weining
Natura: Preprint
Pubblicazione: 2025
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author Traktman, Lily
Yu, Bowen
Vasquez, Isa
Ospov, Stanislav
Dreyfus, Remi
Man, Weining
author_facet Traktman, Lily
Yu, Bowen
Vasquez, Isa
Ospov, Stanislav
Dreyfus, Remi
Man, Weining
contents Traditional self-assembly methods often rely on densely packed colloidal crystalline structures and have inherent limitations in generating materials with isotropic photonic bandgaps (PBG). This study explores the photonic properties of materials structured according to hyperuniform disordered patterns (HUDS) generated via a hydrodynamic process in a microchannel. This research employs simulations to characterize optical bandgaps and determine the minimum dielectric contrast required for PBG formation in structures based on the templates experimentally formed under various conditions during the hydrodynamic process. The optimal conditions in the hydrodynamic process for realizing PBG have been identified. The findings offer a promising avenue for the large-scale production of isotropic photonic bandgap materials.
format Preprint
id arxiv_https___arxiv_org_abs_2507_08613
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Photonic bandgap properties of hyperuniform systems self-assembled in a microfluidic channel
Traktman, Lily
Yu, Bowen
Vasquez, Isa
Ospov, Stanislav
Dreyfus, Remi
Man, Weining
Optics
Traditional self-assembly methods often rely on densely packed colloidal crystalline structures and have inherent limitations in generating materials with isotropic photonic bandgaps (PBG). This study explores the photonic properties of materials structured according to hyperuniform disordered patterns (HUDS) generated via a hydrodynamic process in a microchannel. This research employs simulations to characterize optical bandgaps and determine the minimum dielectric contrast required for PBG formation in structures based on the templates experimentally formed under various conditions during the hydrodynamic process. The optimal conditions in the hydrodynamic process for realizing PBG have been identified. The findings offer a promising avenue for the large-scale production of isotropic photonic bandgap materials.
title Photonic bandgap properties of hyperuniform systems self-assembled in a microfluidic channel
topic Optics
url https://arxiv.org/abs/2507.08613