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Modification and Functionalization of Fibers Formed by Electrospinning: A Review

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Date 2022 Sep 22
PMID 36135880
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Abstract

The development of new materials with specific functionalities for certain applications has been increasing with the advent of nanotechnology. A technique widely used for this purpose is electrospinning, because control of several parameters involved in the process can yield nanoscale fibers. In addition to the production of innovative and small-scale materials, through structural, chemical, physical, and biological modifications in the fibers produced in electrospinning, it is possible to obtain specific properties for a given application. Thus, the produced fibers can serve different purposes, such as in the areas of sensors, catalysis, and environmental and medical fields. Given this context, this article presents a review of the electrospinning technique, addressing the parameters that influence the properties of the fibers formed and some techniques used to modify them as specific treatments that can be conducted during or after electrospinning. In situ addition of nanoparticles, changes in the configuration of the metallic collector, use of alternating current, electret fibers, core/shell method, coating, electrospray-coating, plasma, reinforcing composite materials, and thermal treatments are some of the examples addressed in this work. Therefore, this work contributes to a better comprehension of some of the techniques mentioned in the literature so far.

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References
1.
Leones A, Lieblich M, Benavente R, Gonzalez J, Peponi L . Potential Applications of Magnesium-Based Polymeric Nanocomposites Obtained by Electrospinning Technique. Nanomaterials (Basel). 2020; 10(8). PMC: 7466477. DOI: 10.3390/nano10081524. View

2.
Langer R, Weissleder R . Nanotechnology. JAMA. 2015; 313(2):135-6. DOI: 10.1001/jama.2014.16315. View

3.
Laurano R, Boffito M, Torchio A, Cassino C, Chiono V, Ciardelli G . Plasma Treatment of Polymer Powder as an Effective Tool to Functionalize Polymers: Case Study Application on an Amphiphilic Polyurethane. Polymers (Basel). 2020; 11(12). PMC: 6960810. DOI: 10.3390/polym11122109. View

4.
Nel A, Xia T, Madler L, Li N . Toxic potential of materials at the nanolevel. Science. 2006; 311(5761):622-7. DOI: 10.1126/science.1114397. View

5.
Nagy Z, Balogh A, Dravavolgyi G, Ferguson J, Pataki H, Vajna B . Solvent-free melt electrospinning for preparation of fast dissolving drug delivery system and comparison with solvent-based electrospun and melt extruded systems. J Pharm Sci. 2012; 102(2):508-17. DOI: 10.1002/jps.23374. View