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Description
  • In the conventional electrospinning process, nanofibers are collected onto a collector after passing through the chaotic whipping phase of the nanofiber formation. Positions of nanofibers on a substrate are random as a consequence of these chaotic jet movements; however many potential applications require precisely defined morphology and anisotropic properties of nanofibrous materials. Patterned collectors with different gap distances have been used for systematic deposition of aligned nanofibers. Experimental results of nanofibers alignment for variable gap width indicate the same trends as theoretical predictions and numerical simulation. The collector electrodes separation distance is responsible for transversal electric strength formation, which is found to be the key factor achieving very well aligned nanofibers. Optimized collector design comes from both analytical calculations of electrostatic strength in the vicinity of the electrodes and from experimental verification by nanofibers fabrication.
  • In the conventional electrospinning process, nanofibers are collected onto a collector after passing through the chaotic whipping phase of the nanofiber formation. Positions of nanofibers on a substrate are random as a consequence of these chaotic jet movements; however many potential applications require precisely defined morphology and anisotropic properties of nanofibrous materials. Patterned collectors with different gap distances have been used for systematic deposition of aligned nanofibers. Experimental results of nanofibers alignment for variable gap width indicate the same trends as theoretical predictions and numerical simulation. The collector electrodes separation distance is responsible for transversal electric strength formation, which is found to be the key factor achieving very well aligned nanofibers. Optimized collector design comes from both analytical calculations of electrostatic strength in the vicinity of the electrodes and from experimental verification by nanofibers fabrication. (en)
Title
  • Nano fibrous materials with anisotropic properties
  • Nano fibrous materials with anisotropic properties (en)
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  • Nano fibrous materials with anisotropic properties
  • Nano fibrous materials with anisotropic properties (en)
skos:notation
  • RIV/25281844:_____/10:#0000019!RIV13-MPO-25281844
http://linked.open...avai/riv/aktivita
http://linked.open...avai/riv/aktivity
  • P(FR-TI1/151)
http://linked.open...vai/riv/dodaniDat
http://linked.open...aciTvurceVysledku
http://linked.open.../riv/druhVysledku
http://linked.open...iv/duvernostUdaju
http://linked.open...titaPredkladatele
http://linked.open...dnocenehoVysledku
  • 273603
http://linked.open...ai/riv/idVysledku
  • RIV/25281844:_____/10:#0000019
http://linked.open...riv/jazykVysledku
http://linked.open.../riv/klicovaSlova
  • nanofibers; electrospinning; aligned fibers; patterned collector (en)
http://linked.open.../riv/klicoveSlovo
http://linked.open...ontrolniKodProRIV
  • [1EFE6648CBB6]
http://linked.open...v/mistoKonaniAkce
  • Olomouc
http://linked.open...i/riv/mistoVydani
  • Olomouc
http://linked.open...i/riv/nazevZdroje
  • Nanocon 2010
http://linked.open...in/vavai/riv/obor
http://linked.open...ichTvurcuVysledku
http://linked.open...cetTvurcuVysledku
http://linked.open...vavai/riv/projekt
http://linked.open...UplatneniVysledku
http://linked.open...iv/tvurceVysledku
  • Pokorný, Marek
  • Velebný, Vladimír
  • Hánošová, Veronika
http://linked.open...vavai/riv/typAkce
http://linked.open.../riv/zahajeniAkce
number of pages
http://purl.org/ne...btex#hasPublisher
  • Tanger spol. s.r.o.
https://schema.org/isbn
  • 978-80-87294-18-5
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