Steering surface topographies of electrospun fibers: understanding the mechanisms

Abstract A profound understanding of how to tailor surface topographies of electrospun fibers is of great importance for surface sensitive applications including optical sensing, catalysis, drug delivery and tissue engineering. Hereby, a novel approach to comprehend the driving forces for fiber surf...

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Main Authors: Gökçe Yazgan, Ruslan I. Dmitriev, Vasundhara Tyagi, James Jenkins, Gelu-Marius Rotaru, Markus Rottmar, René M. Rossi, Claudio Toncelli, Dmitri B. Papkovsky, Katharina Maniura-Weber, Giuseppino Fortunato
Format: Article
Language:English
Published: Nature Publishing Group 2017-03-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-017-00181-0
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spelling doaj-a251e24e44cf4c98b0b322d9be8c482b2020-12-08T03:18:33ZengNature Publishing GroupScientific Reports2045-23222017-03-017111310.1038/s41598-017-00181-0Steering surface topographies of electrospun fibers: understanding the mechanismsGökçe Yazgan0Ruslan I. Dmitriev1Vasundhara Tyagi2James Jenkins3Gelu-Marius Rotaru4Markus Rottmar5René M. Rossi6Claudio Toncelli7Dmitri B. Papkovsky8Katharina Maniura-Weber9Giuseppino Fortunato10Empa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Protection and PhysiologySchool of Biochemistry and Cell Biology, University College CorkEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Protection and PhysiologySchool of Biochemistry and Cell Biology, University College CorkEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Protection and PhysiologyEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for BiointerfacesEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Protection and PhysiologyEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Protection and PhysiologySchool of Biochemistry and Cell Biology, University College CorkEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for BiointerfacesEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Protection and PhysiologyAbstract A profound understanding of how to tailor surface topographies of electrospun fibers is of great importance for surface sensitive applications including optical sensing, catalysis, drug delivery and tissue engineering. Hereby, a novel approach to comprehend the driving forces for fiber surface topography formation is introduced through inclusion of the dynamic solvent-polymer interaction during fiber formation. Thus, the interplay between polymer solubility as well as computed fiber jet surface temperature changes in function of time during solvent evaporation and the resultant phase separation behavior are studied. The correlation of experimental and theoretical results shows that the temperature difference between the polymer solution jet surface temperature and the dew point of the controlled electrospinning environment are the main influencing factors with respect to water condensation and thus phase separation leading to the final fiber surface topography. As polymer matrices with enhanced surface area are particularly appealing for sensing applications, we further functionalized our nanoporous fibrous membranes with a phosphorescent oxygen-sensitive dye. The hybrid membranes possess high brightness, stability in aqueous medium, linear response to oxygen and hence represent a promising scaffold for cell growth, contactless monitoring of oxygen and live fluorescence imaging in 3-D cell models.https://doi.org/10.1038/s41598-017-00181-0
collection DOAJ
language English
format Article
sources DOAJ
author Gökçe Yazgan
Ruslan I. Dmitriev
Vasundhara Tyagi
James Jenkins
Gelu-Marius Rotaru
Markus Rottmar
René M. Rossi
Claudio Toncelli
Dmitri B. Papkovsky
Katharina Maniura-Weber
Giuseppino Fortunato
spellingShingle Gökçe Yazgan
Ruslan I. Dmitriev
Vasundhara Tyagi
James Jenkins
Gelu-Marius Rotaru
Markus Rottmar
René M. Rossi
Claudio Toncelli
Dmitri B. Papkovsky
Katharina Maniura-Weber
Giuseppino Fortunato
Steering surface topographies of electrospun fibers: understanding the mechanisms
Scientific Reports
author_facet Gökçe Yazgan
Ruslan I. Dmitriev
Vasundhara Tyagi
James Jenkins
Gelu-Marius Rotaru
Markus Rottmar
René M. Rossi
Claudio Toncelli
Dmitri B. Papkovsky
Katharina Maniura-Weber
Giuseppino Fortunato
author_sort Gökçe Yazgan
title Steering surface topographies of electrospun fibers: understanding the mechanisms
title_short Steering surface topographies of electrospun fibers: understanding the mechanisms
title_full Steering surface topographies of electrospun fibers: understanding the mechanisms
title_fullStr Steering surface topographies of electrospun fibers: understanding the mechanisms
title_full_unstemmed Steering surface topographies of electrospun fibers: understanding the mechanisms
title_sort steering surface topographies of electrospun fibers: understanding the mechanisms
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2017-03-01
description Abstract A profound understanding of how to tailor surface topographies of electrospun fibers is of great importance for surface sensitive applications including optical sensing, catalysis, drug delivery and tissue engineering. Hereby, a novel approach to comprehend the driving forces for fiber surface topography formation is introduced through inclusion of the dynamic solvent-polymer interaction during fiber formation. Thus, the interplay between polymer solubility as well as computed fiber jet surface temperature changes in function of time during solvent evaporation and the resultant phase separation behavior are studied. The correlation of experimental and theoretical results shows that the temperature difference between the polymer solution jet surface temperature and the dew point of the controlled electrospinning environment are the main influencing factors with respect to water condensation and thus phase separation leading to the final fiber surface topography. As polymer matrices with enhanced surface area are particularly appealing for sensing applications, we further functionalized our nanoporous fibrous membranes with a phosphorescent oxygen-sensitive dye. The hybrid membranes possess high brightness, stability in aqueous medium, linear response to oxygen and hence represent a promising scaffold for cell growth, contactless monitoring of oxygen and live fluorescence imaging in 3-D cell models.
url https://doi.org/10.1038/s41598-017-00181-0
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