<oai_dc:dc xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:oai_dc="http://www.openarchives.org/OAI/2.0/oai_dc/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/oai_dc/ http://www.openarchives.org/OAI/2.0/oai_dc.xsd">
  <dc:creator>Maurya, Anjani K.</dc:creator>
  <dc:creator>Weidenbacher, Lukas</dc:creator>
  <dc:creator>Spano, Fabrizio</dc:creator>
  <dc:creator>Fortunato, Giuseppino</dc:creator>
  <dc:creator>Rossi, René M.</dc:creator>
  <dc:creator>Frenz, Martin</dc:creator>
  <dc:creator>Dommann, Alex</dc:creator>
  <dc:creator>Neels, Antonia</dc:creator>
  <dc:creator>Sadeghpour, Amin</dc:creator>
  <dc:date>2019-04-11</dc:date>
  <dc:description xmlns:ns0="xml" ns0:lang="en">A dedicated nanofiber design for applications in the biomedical domain is based on  the understanding of nanofiber structures. The structure of electrospun nanofibers  strongly influences their properties and functionalities. In polymeric nanofibers X-ray  scattering and diffraction methods, i.e. SAXS and WAXD, are capable of decoding  their structural insights from about 100 nm down to the Angström scale. Here, we  present a comprehensive X-ray scattering and diffraction based study and introduce  new data analysis approaches to unveil detailed structural features in electrospun  poly(vinylidene fluoride-co-hexafluoropropylene) (PVDFhfp) nanofiber membranes.  Particular emphasis was placed on anisotropic morphologies being developed during  the nanofiber fabrication process. Global analysis was performed on SAXS data to  derive the nanofibrillar structure of repeating lamella crystalline domains with average  dimensions of 12.5 nm thickness and 7.8 nm spacing along with associated tie- molecules. The varying surface roughness of the nanofiber was evaluated by  extracting the Porod exponent in parallel and perpendicular direction to the nanofiber  axis, which was further validated by Atomic Force Microscopy. Additionally, the  presence of a mixture of the monoclinic alpha and the orthorhombic beta PVDFhfp  phases both exhibiting about 6% larger unit cells compared to the corresponding pure  PVDF phases was derived from WAXD. The current study shows a generic approach  in detailed understanding of internal structures and surface morphology for  nanofibers. This forms the basis for targeted structure and morphology steering and  the respective controlling during the fabrication process with the aim to engineer  nanofibers for different biomedical applications with specific requirements.</dc:description>
  <dc:format>application/pdf</dc:format>
  <dc:identifier>https://folia.unifr.ch/global/documents/307605</dc:identifier>
  <dc:identifier>https://folia.unifr.ch/documents/307605/files/nee_sii.pdf</dc:identifier>
  <dc:identifier>https://folia.unifr.ch/documents/307605/files/nee_sii_sm.pdf</dc:identifier>
  <dc:language>eng</dc:language>
  <dc:relation>info:eu-repo/semantics/altIdentifier/doi/10.1039/C9NR00446G</dc:relation>
  <dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
  <dc:rights>License undefined</dc:rights>
  <dc:source>Nanoscale. - 2019, vol. 11, no. 15, p. 7176–7187</dc:source>
  <dc:subject>info:eu-repo/classification/udc/54</dc:subject>
  <dc:title xmlns:ns1="xml" ns1:lang="en">Structural insights into semicrystalline states of electrospun nanofibers: a multiscale analytical approach</dc:title>
  <dc:type>http://purl.org/coar/resource_type/c_6501</dc:type>
</oai_dc:dc>
