Electrospinning technique as a powerful tool for the design of superhydrophobic surfaces
Date
2020Version
Acceso abierto / Sarbide irekia
Type
Contribución a congreso / Biltzarrerako ekarpena
Version
Versión publicada / Argitaratu den bertsioa
Project Identifier
Impact
|
10.5772/intechopen.92688
Abstract
The development of surface engineering techniques to tune-up the composition,
structure, and function of materials surfaces is a permanent challenge for the scientific
community. In this chapter, the electrospinning process is proposed as a versatile
technique for the development of highly hydrophobic or even superhydrophobic
surfaces. Electrospinning makes possible the fabrication of nanostr ...
[++]
The development of surface engineering techniques to tune-up the composition,
structure, and function of materials surfaces is a permanent challenge for the scientific
community. In this chapter, the electrospinning process is proposed as a versatile
technique for the development of highly hydrophobic or even superhydrophobic
surfaces. Electrospinning makes possible the fabrication of nanostructured ultrathin
fibers, denoted as electrospun nanofibers (ENFs), from a wide range of polymeric
materials that can be deposited on any type of surface with arbitrary geometry.
In addition, by tuning the deposition parameters (mostly applied voltage, flow rate,
and distance between collector/needle) in combination with the chemical structure
of the polymeric precursor (functional groups with hydrophobic behavior) and its
resultant viscosity, it is possible to obtain nanofibers with highly porous surface. As a
result, functionalized surfaces with water-repellent behavior can be implemented in
a wide variety of industrial applications such as in corrosion resistance, high efficient
water-oil separation, surgical meshes in biomedical applications, or even in energy
systems for long-term efficiency of dye-sensitized solar cells, among others. [--]
Subject
Electrospinning,
Superhydrophobicity,
Wettability properties,
Polymeric precursors,
Industrial applications
Publisher
IntechOpen
Published in
Pham, P.; Goel, P.; Kumar, S.; Yadav, K. (Eds.). 21st century surface science: a handbook. Londres: IntechOpen; 2020. p.1-17 978-1-78985-199-1
Departament
Universidad Pública de Navarra. Departamento de Ingeniería /
Nafarroako Unibertsitate Publikoa. Ingeniaritza Saila
Publisher version
Sponsorship
This work was supported by the Ministerio de Ciencia, Innovación y Universidades-Retos (Project RTI2018-096262-B-C41-MAITAI) and by the Public
University of Navarre (Project PJUPNA1929).
info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/RTI2018-096262-B-C41