The Role of Electrical Polarity in Electrospinning and on the Mechanical and Structural Properties of As-Spun Fibers.
PMMA
charges
electrical polarity
electrospinning
fibers
mechanical properties
Journal
Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929
Informations de publication
Date de publication:
19 Sep 2020
19 Sep 2020
Historique:
received:
03
08
2020
revised:
16
09
2020
accepted:
17
09
2020
entrez:
23
9
2020
pubmed:
24
9
2020
medline:
24
9
2020
Statut:
epublish
Résumé
Electric field strength and polarity in electrospinning processes and their effect on process dynamics and the physical properties of as-spun fibers is studied. Using a solution of the neutral polymer such as poly(methyl methacrylate) (PMMA) we explored the electrospun jet motion issued from a Taylor cone. We focused on the straight jet section up to the incipient stage of the bending instability and on the radius of the disk of the fibers deposited on the collecting electrode. A new correlation formula using dimensionless parameters was found, characterizing the effect of the electric field on the length of the straight jet, L˜E~E˜0.55. This correlation was found to be valid when the spinneret was either negatively or positively charged and the electrode grounded. The fiber deposition radius was found to be independent of the electric field strength and polarity. When the spinneret was negatively charged, L˜E was longer, the as-spun fibers were wider. The positively charged setup resulted in fibers with enhanced mechanical properties and higher crystallinity. This work demonstrates that often-overlooked electrical polarity and field strength parameters influence the dynamics of fiber electrospinning, which is crucial for designing polymer fiber properties and optimizing their collection.
Identifiants
pubmed: 32961759
pii: ma13184169
doi: 10.3390/ma13184169
pmc: PMC7560487
pii:
doi:
Types de publication
Journal Article
Langues
eng
Subventions
Organisme : Narodowe Centrum Nauki
ID : No 2015/18/E/ST5/00230
Références
Nanomaterials (Basel). 2019 Feb 14;9(2):
pubmed: 30769855
ACS Appl Mater Interfaces. 2011 Jun;3(6):1991-6
pubmed: 21545103
Phys Rev Lett. 2003 Apr 11;90(14):144502
pubmed: 12731920
Langmuir. 2014 Jun 17;30(23):6819-25
pubmed: 24845626
Sci Technol Adv Mater. 2013 Mar 7;14(1):015009
pubmed: 27877567
J Nanosci Nanotechnol. 2011 Sep;11(9):7931-6
pubmed: 22097508
Polymers (Basel). 2018 Jul 30;10(8):
pubmed: 30960767
J Phys Chem B. 2011 Nov 3;115(43):12441-7
pubmed: 21928836
Anal Chem. 2015 Mar 3;87(5):3011-8
pubmed: 25654439
PLoS One. 2017 Nov 15;12(11):e0187815
pubmed: 29141043
Nat Nanotechnol. 2007 Jan;2(1):59-62
pubmed: 18654209
ACS Appl Mater Interfaces. 2020 Mar 18;12(11):13575-13583
pubmed: 32090543
Phys Rev E Stat Nonlin Soft Matter Phys. 2010 Feb;81(2 Pt 2):026313
pubmed: 20365657
Eur J Pharm Sci. 2017 Sep 30;107:148-167
pubmed: 28690099
Biomicrofluidics. 2011 Mar 30;5(1):13403
pubmed: 21522493
Nanoscale Res Lett. 2019 Sep 11;14(1):310
pubmed: 31511987
Sci Rep. 2014 Sep 11;4:6335
pubmed: 25208692