Design and fabrication of fiber optic microlenses using an arc fusion splicing system

Fuente: arXiv
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Hauptverfasser: Matczak, Szymon, Stachowiak, Dorota, Soboń, Grzegorz
Format: Preprint
Veröffentlicht: 2024
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author Matczak, Szymon
Stachowiak, Dorota
Soboń, Grzegorz
author_facet Matczak, Szymon
Stachowiak, Dorota
Soboń, Grzegorz
contents In this study, we introduce a new approach to fabricating fiber optic microlenses using a three-electrode arc fusion splicer. Through beam propagation method-based simulations, we verified the performance of our lenses, achieving highly consistent results across both simulations and experiments. We fabricated three distinctive microlens types: ball-type, fiber tip, and ball-type on a tapered fiber, demonstrating versatility in lens shape and function. By precisely adjusting lens designs, we achieved beam radii between 2.7 um and 23.5 um, with focal lengths spanning from 12 um to 787 um. Our method offers robust control over lens geometry, enabling tailored beam parameters for specific applications. This technique is efficient, cost-effective, and adaptable to various optical fibers, including multimode and polarization-maintaining, highlighting its potential for broader optical and photonic applications.
format Preprint
id arxiv_https___arxiv_org_abs_2411_19591
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Design and fabrication of fiber optic microlenses using an arc fusion splicing system
Matczak, Szymon
Stachowiak, Dorota
Soboń, Grzegorz
Optics
In this study, we introduce a new approach to fabricating fiber optic microlenses using a three-electrode arc fusion splicer. Through beam propagation method-based simulations, we verified the performance of our lenses, achieving highly consistent results across both simulations and experiments. We fabricated three distinctive microlens types: ball-type, fiber tip, and ball-type on a tapered fiber, demonstrating versatility in lens shape and function. By precisely adjusting lens designs, we achieved beam radii between 2.7 um and 23.5 um, with focal lengths spanning from 12 um to 787 um. Our method offers robust control over lens geometry, enabling tailored beam parameters for specific applications. This technique is efficient, cost-effective, and adaptable to various optical fibers, including multimode and polarization-maintaining, highlighting its potential for broader optical and photonic applications.
title Design and fabrication of fiber optic microlenses using an arc fusion splicing system
topic Optics
url https://arxiv.org/abs/2411.19591