Process study, development and degradation behavior of different size scale electrospun poly(caprolactone) and poly(lactic acid) fibers

被引:0
作者
K.T. Shalumon
J. Anjana
Ullas Mony
R. Jayakumar
Jyh-Ping Chen
机构
[1] Chang Gung University,Department of Chemical and Materials Engineering
[2] Amrita Vishwa Vidyapeetham,Centre for Nanosciences and Molecular Medicine, Amrita Institute of Medical Sciences and Research Centre
[3] Chang Gung Memorial Hospital,Department of Plastic and Reconstructive Surgery and Craniofacial Research Center
[4] Chang Gung University of Science and Technology,Research Center for Food and Cosmetic Safety, Research Center for Chinese Herbal Medicine, College of Human Ecology
[5] Ming Chi University of Technology,Department of Materials Engineering
来源
Journal of Polymer Research | 2018年 / 25卷
关键词
Electrospinning; Degradation; Nanofibers; Microfibers; Multiscale fibers; Poly(lactic acid); Poly(caprolactone);
D O I
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中图分类号
学科分类号
摘要
This study describes the preparation of electrospun poly(caprolactone) (PCL) and poly(lactic acid) (PLA) fibrous scaffolds with and without nano-hydroxyapatite (nHAp) having nanoscale, microscale and combined micro/nano (multiscale) architecture. Processing parameters such as polymer concentration, voltage, flow rate and solvent compositions were varied in wide range to display the effect of each one in determining the diameter and morphology of fibers. The effect of each regulating parameter on fiber morphology and diameter was evaluated and characterized using scanning electron microscope (SEM). Degradability of the selected fibrous scaffolds was verified by phosphate buffered saline immersion and its morphology was analyzed through SEM, after 5 and 12 months. Quantitative measurement in degradation was further evaluated through pH analysis of the medium. Both studies revealed that PLA had faster degradation compared to PCL irrespective of the size scale nature of fibers. Structural stability evaluation of the degraded fibers in comparison with pristine fibers by thermogravimetric analysis further confirmed faster degradability of PLA compared to PCL fibers. The results indicate that PLA showed faster degradation than PCL irrespective of the size-scale nature of fibrous scaffolds, and therefore, could be applied in a variety of biomedical applications including tissue engineering.
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[11]  
Long TE(2005)Poly(acrylic acid) nanofibers by electrospinning Mater Lett 59 829-832
[12]  
Liu H(2011)Effect of nonionic surfactant and acidity on chitosan nanofibers with different molecular weights Carbohydr Polym 83 470-476
[13]  
Hsieh Y-L(2002)Applications of functional surfactants Curr Opin Colloid Interface Sci 7 267-275
[14]  
Buchko CJ(2008)Optimization of the electrospinning conditions for preparation of nanofibers from polyvinylacetate (PVAc) in ethanol solvent J Ind Eng Chem 14 707-713
[15]  
Chen LC(2005)Electrospinning of nanofibers with core-sheath, hollow, or porous structures J Mater Chem 15 735-738
[16]  
Shen Y(2009)A novel method for preparing electrospun fibers with nano−/micro-scale porous structures Polym Bull 63 259-265
[17]  
Martin DC(2006)Electrospun nanofibers: solving global issues Mater Today 9 40-50
[18]  
Yuan X(2011)Paclitaxel loaded electrospun porous nanofibers as mat potential application for chemotherapy against prostate cancer Carbohydr Polym 86 505-512
[19]  
Zhang Y(2017)Label free ultrasensitive optical sensor decorated with polyaniline nanofibers: characterization and immunosensing application Sens Actuator B-Chem 240 443-450
[20]  
Dong C(2017)Performance of electro-spun carbon nanofiber electrodes with conductive poly(3,4-ethylenedioxythiophene) coatings in bioelectrochemical systems J Power Sources 356 331-337