Transient Viscosity Adjustment Using a Coaxial Nozzle for Electrospinning Nanofibers from Non-Spinnable Pure m -Poly(hydroxyamide)

In this study, a transient viscosity adjustment method using a coaxial nozzle was explored to fabricate nanofibers from non-spinnable -poly(hydroxyamide) ( -PHA). Unlike conventional electrospinning methods that often require additives to induce fiber formation, this approach relies on a sheath-core...

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Veröffentlicht in:Polymers 2024-12, Vol.16 (23), p.3414
Hauptverfasser: Kim, Yerim, Lim, Jihwan, Kim, Han Seong, Lee, Jaejun, Chun, Youngsang, Cho, Dong-Hyun, Kang, Chan Sol, Choi, Sejin
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Sprache:eng
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Zusammenfassung:In this study, a transient viscosity adjustment method using a coaxial nozzle was explored to fabricate nanofibers from non-spinnable -poly(hydroxyamide) ( -PHA). Unlike conventional electrospinning methods that often require additives to induce fiber formation, this approach relies on a sheath-core configuration, introducing tetrahydrofuran (THF) to the sheath to temporarily adjust solution viscosity. The diffusion of THF into the core -PHA solution resulted in momentary solidification at the interface, promoting nanofiber formation without compromising polymer solubility. SEM and rheological analyses confirmed that optimized sheath-to-core flow ratios yielded nanofibers with significantly reduced particle formation. Notably, increasing the THF flow rate facilitated a faster solidification rate, enhancing jet elongation and resulting in uniform nanofibers with diameters of approximately 180-190 nm. Although complete nanofibers without beads were not achieved in this study, this coaxial electrospinning approach presents a possible pathway for fabricating nanofibers from polymers with limited spinnability, potentially expanding the application scope of electro-spun materials in high-performance fields.
ISSN:2073-4360
2073-4360
DOI:10.3390/polym16233414