Kefiran/poly(vinyl alcohol)/poly(vinyl pyrrolidone) composite nanofibers: fabrication, characterization and consideration of effective parameters in electrospinning

被引:0
作者
Fatemeh Mehrali
Hakimeh Ziyadi
Malak Hekmati
Reza Faridi-Majidi
Mahnaz Qomi
机构
[1] Islamic Azad University,Department of Organic Chemistry, Faculty of Pharmaceutical Chemistry, Tehran Medical Science
[2] Tehran University of Medical Sciences,Department of Medical Nanotechnology, School of Advanced Technologies in Medicine
[3] Tehran Medical Sciences,Active Pharmaceutical Ingredients Research Center
[4] Islamic Azad University,undefined
来源
SN Applied Sciences | 2020年 / 2卷
关键词
Poly(vinyl alcohol); Poly(vinyl pyrrolidone); Kefiran; Electrospinning; Composite nanofiber;
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摘要
The kefiran/polyvinyl alcohol and polyvinyl pyrrolidone nanofibers were effectively fabricated for the first time using electrospinning of poly(vinyl alcohol), poly(vinyl pyrrolidone) and kefiran blend solution. The effect of solution parameters, such as kefiran concentration and poly(vinyl alcohol)/poly(vinyl pyrrolidone) mixing ratio, were considered. The parameters’ effects, such as voltage, nozzle-to-collector distance and feeding rate on nanofibers morphology, were also checked by the scanning electron microscopy images. After changing the parameters on different steps, designed by the chemo metrics software, the finest nanofibers were produced in the following conditions: 2% kefiran concentration, 30/70 kefiran/polymer mixing ratio, 12 kV voltage, 200 mm needle-to-collector distance and 0.5 (mL/h) polymer injection rate. The nanofibers produced in these conditions were uniform without knots or adhesion in the lowest diameter of 156 nm. Kefiran concentration and kefiran/polymer mixing ratio were found as the most effective parameter in the morphology and diameter size of the nanofibers. The attenuated total reflectance (ATR-Ft-IR), atomic force spectroscopy, differential scanning calorimeters and thermal gravimetric analysis were used to investigate molecular structures, three-dimensional morphology and heating properties of the nanofibers, respectively.
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