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High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication

High efficiency fabrication and integration of three-dimension (3D) functional devices in Lab-on-a-chip systems are crucial for microfluidic applications. Here, a spatial light modulator (SLM)-based multifoci parallel femtosecond laser scanning technology was proposed to integrate microstructures in...

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Autores principales: Xu, Bing, Du, Wen-Qiang, Li, Jia-Wen, Hu, Yan-Lei, Yang, Liang, Zhang, Chen-Chu, Li, Guo-Qiang, Lao, Zhao-Xin, Ni, Jin-Cheng, Chu, Jia-Ru, Wu, Dong, Liu, Su-Ling, Sugioka, Koji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4730193/
https://www.ncbi.nlm.nih.gov/pubmed/26818119
http://dx.doi.org/10.1038/srep19989
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author Xu, Bing
Du, Wen-Qiang
Li, Jia-Wen
Hu, Yan-Lei
Yang, Liang
Zhang, Chen-Chu
Li, Guo-Qiang
Lao, Zhao-Xin
Ni, Jin-Cheng
Chu, Jia-Ru
Wu, Dong
Liu, Su-Ling
Sugioka, Koji
author_facet Xu, Bing
Du, Wen-Qiang
Li, Jia-Wen
Hu, Yan-Lei
Yang, Liang
Zhang, Chen-Chu
Li, Guo-Qiang
Lao, Zhao-Xin
Ni, Jin-Cheng
Chu, Jia-Ru
Wu, Dong
Liu, Su-Ling
Sugioka, Koji
author_sort Xu, Bing
collection PubMed
description High efficiency fabrication and integration of three-dimension (3D) functional devices in Lab-on-a-chip systems are crucial for microfluidic applications. Here, a spatial light modulator (SLM)-based multifoci parallel femtosecond laser scanning technology was proposed to integrate microstructures inside a given ‘Y’ shape microchannel. The key novelty of our approach lies on rapidly integrating 3D microdevices inside a microchip for the first time, which significantly reduces the fabrication time. The high quality integration of various 2D-3D microstructures was ensured by quantitatively optimizing the experimental conditions including prebaking time, laser power and developing time. To verify the designable and versatile capability of this method for integrating functional 3D microdevices in microchannel, a series of microfilters with adjustable pore sizes from 12.2 μm to 6.7 μm were fabricated to demonstrate selective filtering of the polystyrene (PS) particles and cancer cells with different sizes. The filter can be cleaned by reversing the flow and reused for many times. This technology will advance the fabrication technique of 3D integrated microfluidic and optofluidic chips.
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spelling pubmed-47301932016-02-03 High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication Xu, Bing Du, Wen-Qiang Li, Jia-Wen Hu, Yan-Lei Yang, Liang Zhang, Chen-Chu Li, Guo-Qiang Lao, Zhao-Xin Ni, Jin-Cheng Chu, Jia-Ru Wu, Dong Liu, Su-Ling Sugioka, Koji Sci Rep Article High efficiency fabrication and integration of three-dimension (3D) functional devices in Lab-on-a-chip systems are crucial for microfluidic applications. Here, a spatial light modulator (SLM)-based multifoci parallel femtosecond laser scanning technology was proposed to integrate microstructures inside a given ‘Y’ shape microchannel. The key novelty of our approach lies on rapidly integrating 3D microdevices inside a microchip for the first time, which significantly reduces the fabrication time. The high quality integration of various 2D-3D microstructures was ensured by quantitatively optimizing the experimental conditions including prebaking time, laser power and developing time. To verify the designable and versatile capability of this method for integrating functional 3D microdevices in microchannel, a series of microfilters with adjustable pore sizes from 12.2 μm to 6.7 μm were fabricated to demonstrate selective filtering of the polystyrene (PS) particles and cancer cells with different sizes. The filter can be cleaned by reversing the flow and reused for many times. This technology will advance the fabrication technique of 3D integrated microfluidic and optofluidic chips. Nature Publishing Group 2016-01-28 /pmc/articles/PMC4730193/ /pubmed/26818119 http://dx.doi.org/10.1038/srep19989 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Xu, Bing
Du, Wen-Qiang
Li, Jia-Wen
Hu, Yan-Lei
Yang, Liang
Zhang, Chen-Chu
Li, Guo-Qiang
Lao, Zhao-Xin
Ni, Jin-Cheng
Chu, Jia-Ru
Wu, Dong
Liu, Su-Ling
Sugioka, Koji
High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication
title High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication
title_full High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication
title_fullStr High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication
title_full_unstemmed High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication
title_short High efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication
title_sort high efficiency integration of three-dimensional functional microdevices inside a microfluidic chip by using femtosecond laser multifoci parallel microfabrication
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4730193/
https://www.ncbi.nlm.nih.gov/pubmed/26818119
http://dx.doi.org/10.1038/srep19989
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