Crystallinity of Electrospun and Centrifugal Spun Polycaprolactone Fibers: A Comparative Study

被引:64
作者
Kostakova, Eva Kuzelova [1 ]
Meszaros, Laszlo [2 ,3 ]
Maskova, Gabriela [1 ]
Blazkova, Lenka [1 ]
Turcsan, Tamas [2 ]
Lukas, David [1 ]
机构
[1] Tech Univ Liberec, Fac Textile Engn, Dept Nonwovens & Nanofibrous Mat, Studentska 2, Liberec 461171, Czech Republic
[2] Budapest Univ Technol & Econ, Fac Mech Engn, Dept Polymer Engn, Muegyetem Rkp 3,T Bldg III, H-1111 Budapest, Hungary
[3] MTA BME Res Grp Composite Sci & Technol, Muegyetem Rkp 3, H-1111 Budapest, Hungary
关键词
DRUG-DELIVERY; JETS;
D O I
10.1155/2017/8952390
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Crystalline properties of semicrystalline polymers are very important parameters that can influence the application area. The internal structure, like the mentioned crystalline properties, of polymers can be influenced by the production technology itself and by changing technology parameters. The present work is devoted to testing of electrospun and centrifugal spun fibrous and nanofibrous materials and compare them to foils and granules made from the same raw polymer. The test setup reveals the structural differences caused by the production technology. Effects of average molecular weight are also exhibited. The applied biodegradable and biocompatible polymer is polycaprolactone (PCL) as it is a widespread material for medical purposes. The crystallinity of PCL has significant effect on rate of degradation that is an important parameter for a biodegradable material and determines the applicability. The results of differential scanning calorimetry (DSC) showed that, at the degree of crystallinity, there is a minor difference between the electrospun and centrifugal spun fibrous materials. However, the significant influence of polymer molecular weight was exhibited. The morphology of the fibrous materials, represented by fiber diameter, also did not demonstrate any connection to final measured crystallinity degree of the tested materials.
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页数:9
相关论文
共 20 条
[1]  
Bognitzki M, 2001, ADV MATER, V13, P70, DOI 10.1002/1521-4095(200101)13:1<70::AID-ADMA70>3.3.CO
[2]  
2-8
[3]   Poly-ε-caprolactone based formulations for drug delivery and tissue engineering: A review [J].
Dash, Tapan K. ;
Konkimalla, V. Badireenath .
JOURNAL OF CONTROLLED RELEASE, 2012, 158 (01) :15-33
[4]   Tailoring Crystallinity of Electrospun Plla Fibres by Control of Electrospinning Parameters [J].
Ero-Phillips, Olubayode ;
Jenkins, Mike ;
Stamboulis, Artemis .
POLYMERS, 2012, 4 (03) :1331-1348
[5]   Optical birefringence and molecular orientation of electrospun polycaprolactone fibers by polarizing-interference microscopy [J].
Kolbuk, Dorota ;
Sajkiewicz, Pawel ;
Kowalewski, Tomasz A. .
EUROPEAN POLYMER JOURNAL, 2012, 48 (02) :275-283
[6]   Study of polycaprolactone wet electrospinning process [J].
Kostakova, E. ;
Seps, M. ;
Pokorny, P. ;
Lukas, D. .
EXPRESS POLYMER LETTERS, 2014, 8 (08) :554-564
[7]   Parameter study and characterization for polyacrylonitrile nanofibers fabricated via centrifugal spinning process [J].
Lu, Yao ;
Li, Ying ;
Zhang, Shu ;
Xu, Guanjie ;
Fu, Kun ;
Lee, Hun ;
Zhang, Xiangwu .
EUROPEAN POLYMER JOURNAL, 2013, 49 (12) :3834-3845
[8]  
Lubasova D., 2009, P 1 C INT PART NANOC
[9]   Physical principles of electrospinning (Electrospinning as a nano-scale technology of the twenty-first century) [J].
Lukas, D. ;
Sarkar, A. ;
Martinova, L. ;
Vodsed'alkova, K. ;
Lubasova, D. ;
Chaloupek, J. ;
Pokorny, P. ;
Mikes, P. ;
Chvojka, J. ;
Komarek, M. .
TEXTILE PROGRESS, 2009, 41 (02) :59-140