The Mechanical Properties of Blended Fibrinogen:Polycaprolactone (PCL) Nanofibers

被引:4
|
作者
Alharbi, Nouf [1 ]
Brigham, Annelise [1 ]
Guthold, Martin [1 ]
机构
[1] Wake Forest Univ, Dept Phys, Winston Salem, NC 27109 USA
关键词
electrospinning; fibrinogen; polycaprolactone; mechanical properties; nanofibers; diameter dependence; ELECTROSPUN FIBRINOGEN; IN-VITRO; FIBER DIAMETER; TISSUE; SCAFFOLDS;
D O I
10.3390/nano13081359
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Electrospinning is a process to produce versatile nanoscale fibers. In this process, synthetic and natural polymers can be combined to produce novel, blended materials with a range of physical, chemical, and biological properties. We electrospun biocompatible, blended fibrinogen:polycaprolactone (PCL) nanofibers with diameters ranging from 40 nm to 600 nm, at 25:75 and 75:25 blend ratios and determined their mechanical properties using a combined atomic force/optical microscopy technique. Fiber extensibility (breaking strain), elastic limit, and stress relaxation times depended on blend ratios but not fiber diameter. As the fibrinogen:PCL ratio increased from 25:75 to 75:25, extensibility decreased from 120% to 63% and elastic limit decreased from a range between 18% and 40% to a range between 12% and 27%. Stiffness-related properties, including the Young's modulus, rupture stress, and the total and relaxed, elastic moduli (Kelvin model), strongly depended on fiber diameter. For diameters less than 150 nm, these stiffness-related quantities varied approximately as D-2; above 300 nm the diameter dependence leveled off. 50 nm fibers were five-ten times stiffer than 300 nm fibers. These findings indicate that fiber diameter, in addition to fiber material, critically affects nanofiber properties. Drawing on previously published data, a summary of the mechanical properties for fibrinogen:PCL nanofibers with ratios of 100:0, 75:25, 50:50, 25:75 and 0:100 is provided.
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页数:18
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