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Electrospinning and Electrospun Nanofibers: Methods, Materials, and Applications

Overview
Journal Chem Rev
Specialty Chemistry
Date 2019 Mar 28
PMID 30916938
Citations 699
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Abstract

Electrospinning is a versatile and viable technique for generating ultrathin fibers. Remarkable progress has been made with regard to the development of electrospinning methods and engineering of electrospun nanofibers to suit or enable various applications. We aim to provide a comprehensive overview of electrospinning, including the principle, methods, materials, and applications. We begin with a brief introduction to the early history of electrospinning, followed by discussion of its principle and typical apparatus. We then discuss its renaissance over the past two decades as a powerful technology for the production of nanofibers with diversified compositions, structures, and properties. Afterward, we discuss the applications of electrospun nanofibers, including their use as "smart" mats, filtration membranes, catalytic supports, energy harvesting/conversion/storage components, and photonic and electronic devices, as well as biomedical scaffolds. We highlight the most relevant and recent advances related to the applications of electrospun nanofibers by focusing on the most representative examples. We also offer perspectives on the challenges, opportunities, and new directions for future development. At the end, we discuss approaches to the scale-up production of electrospun nanofibers and briefly discuss various types of commercial products based on electrospun nanofibers that have found widespread use in our everyday life.

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References
1.
Zhang R, Liu C, Hsu P, Zhang C, Liu N, Zhang J . Nanofiber Air Filters with High-Temperature Stability for Efficient PM2.5 Removal from the Pollution Sources. Nano Lett. 2016; 16(6):3642-9. DOI: 10.1021/acs.nanolett.6b00771. View

2.
Self E, Naguib M, Ruther R, McRen E, Wycisk R, Liu G . High Areal Capacity Si/LiCoO Batteries from Electrospun Composite Fiber Mats. ChemSusChem. 2017; 10(8):1823-1831. DOI: 10.1002/cssc.201700096. View

3.
Chiono V, Tonda-Turo C . Trends in the design of nerve guidance channels in peripheral nerve tissue engineering. Prog Neurobiol. 2015; 131:87-104. DOI: 10.1016/j.pneurobio.2015.06.001. View

4.
Paul K, Singh V, Krishna Vanjari S, Singh S . One step biofunctionalized electrospun multiwalled carbon nanotubes embedded zinc oxide nanowire interface for highly sensitive detection of carcinoma antigen-125. Biosens Bioelectron. 2016; 88:144-152. DOI: 10.1016/j.bios.2016.07.114. View

5.
Lee M, An S, Lee C, Liou M, Yarin A, Yoon S . Hybrid self-healing matrix using core-shell nanofibers and capsuleless microdroplets. ACS Appl Mater Interfaces. 2014; 6(13):10461-8. DOI: 10.1021/am5020293. View