Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiation

The biocompatibility of photosensitive glasses allows various biomedical applications; one is the field of tissue engineering and more precisely microengineered tissue-on-a-chip platforms to study the tissue microenvironment and disease modelling. Three dimensional architectures of adapted component...

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Main Authors: Brokmann Ulrike, Milde Tobias, Rädlein Edda, Liefeith Klaus
Format: Article
Language:English
Published: Sciendo 2019-04-01
Series:Biomedical Glasses
Subjects:
Online Access:https://doi.org/10.1515/bglass-2019-0003
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spelling doaj-b430218a1c7d422f8e1706a45d467aa62021-09-05T20:42:19ZengSciendoBiomedical Glasses2299-39322019-04-0151344510.1515/bglass-2019-0003bglass-2019-0003Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiationBrokmann Ulrike0Milde Tobias1Rädlein Edda2Liefeith Klaus3TU IlmenauIlmenau, GermanyInstitute of Bioprocessing and Analytical Measurement TechniquesHeiligenstadt, GermanyTU Ilmenau, GermanyInstitute of Bioprocessing and Analytical Measurement TechniquesHeiligenstadt, GermanyThe biocompatibility of photosensitive glasses allows various biomedical applications; one is the field of tissue engineering and more precisely microengineered tissue-on-a-chip platforms to study the tissue microenvironment and disease modelling. Three dimensional architectures of adapted components are required for modern materials. A photosensitive lithiumalumosilicate glass FS21 was investigated regarding the interaction with a Ti:Sapphire laser systemto build three dimensional buried channels inside the glass. Femtosecond laser radiation with a wavelength of 800 nm and pulse duration of 140 fs was used to modify the glass structure. Subsurface channel geometries were achieved by a subsequent thermal treatment and were formed into capillaries using wet chemical etching of the exposed and crystallised channels. Contrary to ultraviolet (UV) exposure, spectral optical investigations showed that fs laser exposure caused various radiation induced defects in the base glass coupled with the generation of photoelectrons for the photochemical modification of silver ions. We observed an outgassing of different species coming from raw materials of the original glass batch during the glass crystallisation process. Etch rate ratios differ between 1:25 and 1:45 and are dependent on: stoichiometric deviation between surface and bulk, crystal size and distribution and exchange of the etching agent in narrow capillaries.https://doi.org/10.1515/bglass-2019-0003photosensitive glassfs laser exposure3d machiningtissue engineering
collection DOAJ
language English
format Article
sources DOAJ
author Brokmann Ulrike
Milde Tobias
Rädlein Edda
Liefeith Klaus
spellingShingle Brokmann Ulrike
Milde Tobias
Rädlein Edda
Liefeith Klaus
Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiation
Biomedical Glasses
photosensitive glass
fs laser exposure
3d machining
tissue engineering
author_facet Brokmann Ulrike
Milde Tobias
Rädlein Edda
Liefeith Klaus
author_sort Brokmann Ulrike
title Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiation
title_short Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiation
title_full Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiation
title_fullStr Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiation
title_full_unstemmed Fabrication of 3D microchannels for tissue engineering in photosensitive glass using NIR femtosecond laser radiation
title_sort fabrication of 3d microchannels for tissue engineering in photosensitive glass using nir femtosecond laser radiation
publisher Sciendo
series Biomedical Glasses
issn 2299-3932
publishDate 2019-04-01
description The biocompatibility of photosensitive glasses allows various biomedical applications; one is the field of tissue engineering and more precisely microengineered tissue-on-a-chip platforms to study the tissue microenvironment and disease modelling. Three dimensional architectures of adapted components are required for modern materials. A photosensitive lithiumalumosilicate glass FS21 was investigated regarding the interaction with a Ti:Sapphire laser systemto build three dimensional buried channels inside the glass. Femtosecond laser radiation with a wavelength of 800 nm and pulse duration of 140 fs was used to modify the glass structure. Subsurface channel geometries were achieved by a subsequent thermal treatment and were formed into capillaries using wet chemical etching of the exposed and crystallised channels. Contrary to ultraviolet (UV) exposure, spectral optical investigations showed that fs laser exposure caused various radiation induced defects in the base glass coupled with the generation of photoelectrons for the photochemical modification of silver ions. We observed an outgassing of different species coming from raw materials of the original glass batch during the glass crystallisation process. Etch rate ratios differ between 1:25 and 1:45 and are dependent on: stoichiometric deviation between surface and bulk, crystal size and distribution and exchange of the etching agent in narrow capillaries.
topic photosensitive glass
fs laser exposure
3d machining
tissue engineering
url https://doi.org/10.1515/bglass-2019-0003
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AT radleinedda fabricationof3dmicrochannelsfortissueengineeringinphotosensitiveglassusingnirfemtosecondlaserradiation
AT liefeithklaus fabricationof3dmicrochannelsfortissueengineeringinphotosensitiveglassusingnirfemtosecondlaserradiation
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