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Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure

[Image: see text] The properties of polymeric nanofibers can be tailored and enhanced by properly managing the structure of the polymer molecules at the nanoscale. Although electrospun polymer fibers are increasingly exploited in many technological applications, their internal nanostructure, determi...

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Autores principales: Camposeo, Andrea, Greenfeld, Israel, Tantussi, Francesco, Pagliara, Stefano, Moffa, Maria, Fuso, Francesco, Allegrini, Maria, Zussman, Eyal, Pisignano, Dario
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2013
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3834296/
https://www.ncbi.nlm.nih.gov/pubmed/24090350
http://dx.doi.org/10.1021/nl4033439
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author Camposeo, Andrea
Greenfeld, Israel
Tantussi, Francesco
Pagliara, Stefano
Moffa, Maria
Fuso, Francesco
Allegrini, Maria
Zussman, Eyal
Pisignano, Dario
author_facet Camposeo, Andrea
Greenfeld, Israel
Tantussi, Francesco
Pagliara, Stefano
Moffa, Maria
Fuso, Francesco
Allegrini, Maria
Zussman, Eyal
Pisignano, Dario
author_sort Camposeo, Andrea
collection PubMed
description [Image: see text] The properties of polymeric nanofibers can be tailored and enhanced by properly managing the structure of the polymer molecules at the nanoscale. Although electrospun polymer fibers are increasingly exploited in many technological applications, their internal nanostructure, determining their improved physical properties, is still poorly investigated and understood. Here, we unravel the internal structure of electrospun functional nanofibers made by prototype conjugated polymers. The unique features of near-field optical measurements are exploited to investigate the nanoscale spatial variation of the polymer density, evidencing the presence of a dense internal core embedded in a less dense polymeric shell. Interestingly, nanoscale mapping the fiber Young’s modulus demonstrates that the dense core is stiffer than the polymeric, less dense shell. These findings are rationalized by developing a theoretical model and simulations of the polymer molecular structural evolution during the electrospinning process. This model predicts that the stretching of the polymer network induces a contraction of the network toward the jet center with a local increase of the polymer density, as observed in the solid structure. The found complex internal structure opens an interesting perspective for improving and tailoring the molecular morphology and multifunctional electronic and optical properties of polymer fibers.
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spelling pubmed-38342962013-11-22 Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure Camposeo, Andrea Greenfeld, Israel Tantussi, Francesco Pagliara, Stefano Moffa, Maria Fuso, Francesco Allegrini, Maria Zussman, Eyal Pisignano, Dario Nano Lett [Image: see text] The properties of polymeric nanofibers can be tailored and enhanced by properly managing the structure of the polymer molecules at the nanoscale. Although electrospun polymer fibers are increasingly exploited in many technological applications, their internal nanostructure, determining their improved physical properties, is still poorly investigated and understood. Here, we unravel the internal structure of electrospun functional nanofibers made by prototype conjugated polymers. The unique features of near-field optical measurements are exploited to investigate the nanoscale spatial variation of the polymer density, evidencing the presence of a dense internal core embedded in a less dense polymeric shell. Interestingly, nanoscale mapping the fiber Young’s modulus demonstrates that the dense core is stiffer than the polymeric, less dense shell. These findings are rationalized by developing a theoretical model and simulations of the polymer molecular structural evolution during the electrospinning process. This model predicts that the stretching of the polymer network induces a contraction of the network toward the jet center with a local increase of the polymer density, as observed in the solid structure. The found complex internal structure opens an interesting perspective for improving and tailoring the molecular morphology and multifunctional electronic and optical properties of polymer fibers. American Chemical Society 2013-10-03 2013-11-13 /pmc/articles/PMC3834296/ /pubmed/24090350 http://dx.doi.org/10.1021/nl4033439 Text en Copyright © 2013 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Camposeo, Andrea
Greenfeld, Israel
Tantussi, Francesco
Pagliara, Stefano
Moffa, Maria
Fuso, Francesco
Allegrini, Maria
Zussman, Eyal
Pisignano, Dario
Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure
title Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure
title_full Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure
title_fullStr Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure
title_full_unstemmed Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure
title_short Local Mechanical Properties of Electrospun Fibers Correlate to Their Internal Nanostructure
title_sort local mechanical properties of electrospun fibers correlate to their internal nanostructure
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3834296/
https://www.ncbi.nlm.nih.gov/pubmed/24090350
http://dx.doi.org/10.1021/nl4033439
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