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Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication

We propose a hybrid laser microfabrication approach for the manufacture of three-dimensional (3D) optofluidic spot-size converters in fused silica glass by a combination of femtosecond (fs) laser microfabrication and carbon dioxide laser irradiation. Spatially shaped fs laser-assisted chemical etchi...

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Autores principales: Yu, Jianping, Xu, Jian, Zhang, Aodong, Song, Yunpeng, Qi, Jia, Dong, Qiaonan, Chen, Jianfang, Liu, Zhaoxiang, Chen, Wei, Cheng, Ya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9737694/
https://www.ncbi.nlm.nih.gov/pubmed/36502151
http://dx.doi.org/10.3390/s22239449
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author Yu, Jianping
Xu, Jian
Zhang, Aodong
Song, Yunpeng
Qi, Jia
Dong, Qiaonan
Chen, Jianfang
Liu, Zhaoxiang
Chen, Wei
Cheng, Ya
author_facet Yu, Jianping
Xu, Jian
Zhang, Aodong
Song, Yunpeng
Qi, Jia
Dong, Qiaonan
Chen, Jianfang
Liu, Zhaoxiang
Chen, Wei
Cheng, Ya
author_sort Yu, Jianping
collection PubMed
description We propose a hybrid laser microfabrication approach for the manufacture of three-dimensional (3D) optofluidic spot-size converters in fused silica glass by a combination of femtosecond (fs) laser microfabrication and carbon dioxide laser irradiation. Spatially shaped fs laser-assisted chemical etching was first performed to form 3D hollow microchannels in glass, which were composed of embedded straight channels, tapered channels, and vertical channels connected to the glass surface. Then, carbon dioxide laser-induced thermal reflow was carried out for the internal polishing of the whole microchannels and sealing parts of the vertical channels. Finally, 3D optofluidic spot-size converters (SSC) were formed by filling a liquid-core waveguide solution into laser-polished microchannels. With a fabricated SSC structure, the mode spot size of the optofluidic waveguide was expanded from ~8 μm to ~23 μm with a conversion efficiency of ~84.1%. Further measurement of the waveguide-to-waveguide coupling devices in the glass showed that the total insertion loss of two symmetric SSC structures through two ~50 μm-diameter coupling ports was ~6.73 dB at 1310 nm, which was only about half that of non-SSC structures with diameters of ~9 μm at the same coupling distance. The proposed approach holds great potential for developing novel 3D fluid-based photonic devices for mode conversion, optical manipulation, and lab-on-a-chip sensing.
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spelling pubmed-97376942022-12-11 Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication Yu, Jianping Xu, Jian Zhang, Aodong Song, Yunpeng Qi, Jia Dong, Qiaonan Chen, Jianfang Liu, Zhaoxiang Chen, Wei Cheng, Ya Sensors (Basel) Article We propose a hybrid laser microfabrication approach for the manufacture of three-dimensional (3D) optofluidic spot-size converters in fused silica glass by a combination of femtosecond (fs) laser microfabrication and carbon dioxide laser irradiation. Spatially shaped fs laser-assisted chemical etching was first performed to form 3D hollow microchannels in glass, which were composed of embedded straight channels, tapered channels, and vertical channels connected to the glass surface. Then, carbon dioxide laser-induced thermal reflow was carried out for the internal polishing of the whole microchannels and sealing parts of the vertical channels. Finally, 3D optofluidic spot-size converters (SSC) were formed by filling a liquid-core waveguide solution into laser-polished microchannels. With a fabricated SSC structure, the mode spot size of the optofluidic waveguide was expanded from ~8 μm to ~23 μm with a conversion efficiency of ~84.1%. Further measurement of the waveguide-to-waveguide coupling devices in the glass showed that the total insertion loss of two symmetric SSC structures through two ~50 μm-diameter coupling ports was ~6.73 dB at 1310 nm, which was only about half that of non-SSC structures with diameters of ~9 μm at the same coupling distance. The proposed approach holds great potential for developing novel 3D fluid-based photonic devices for mode conversion, optical manipulation, and lab-on-a-chip sensing. MDPI 2022-12-02 /pmc/articles/PMC9737694/ /pubmed/36502151 http://dx.doi.org/10.3390/s22239449 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yu, Jianping
Xu, Jian
Zhang, Aodong
Song, Yunpeng
Qi, Jia
Dong, Qiaonan
Chen, Jianfang
Liu, Zhaoxiang
Chen, Wei
Cheng, Ya
Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication
title Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication
title_full Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication
title_fullStr Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication
title_full_unstemmed Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication
title_short Manufacture of Three-Dimensional Optofluidic Spot-Size Converters in Fused Silica Using Hybrid Laser Microfabrication
title_sort manufacture of three-dimensional optofluidic spot-size converters in fused silica using hybrid laser microfabrication
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9737694/
https://www.ncbi.nlm.nih.gov/pubmed/36502151
http://dx.doi.org/10.3390/s22239449
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