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Viscoelastic behavior of core-shell structured nanofibers of PLA and PVA produced by coaxial electrospinning

机译:同轴电纺线生产PLA和PVA的核心壳结构纳米纤维的粘弹性行为

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摘要

In recent work, we demonstrated the successful fabrication of core-shell nanofiber composites with enhanced tensile, surface wetting and cytocompatibility properties via coaxial electrospinning using PLA and PVA. It has been shown that core/shell-structured PLA/PVA nanofiber mat has the hydrophilic benefits of PVA and the attractive biological properties of PLA. In this paper, we present detailed mechanical evaluation of the electrospun coaxial nanofiber mats under static, dynamic and creep loading. The core/shell-PLA/PVA nanofibers showed nearly 233% and 150% increase in tensile strength and ductility, respectively, compared to pristine PLA. Dynamic loading tests were employed to study the viscoelasticity of the coaxial core-shell composite nanofibers at various temperatures and frequencies. The results of the storage and loss moduli of the coaxial nanofibers suggested strong physical interaction between the PLA and PVA layers, that contribute to the observed good mechanical behaviour. The better creep resistance of the coaxial PLA/PVA nanofibers under axial loading compared to the pristine materials provides further evidence for the physical interaction between the two constituent materials. A simple linear viscoelastic model is used to quantify the evolution of creep strain in pristine and coaxial materials. This research may help to understand the physical relation between the observed viscoelastic behaviour and the internal structure of coaxial core/shell nanofibers of PLA and PVA.
机译:在最近的工作中,我们证明了通过使用PLA和PVA的同轴静电纺丝通过同轴静电纺丝成功制造核 - 壳纳米纤维复合材料的成功制造,具有增强的拉伸,表面润湿性和细胞偏离性能。已经表明,核心/壳结构PLA / PVA纳米纤维垫具有PVA的亲水性益处和PLA的有吸引力的生物学性质。在本文中,我们在静电,动态和蠕变荷载下提供了电纺同轴纳米纤维垫的详细机械评价。与原始PLA相比,核/壳-PLA / PVA纳米纤维分别显示抗拉强度和延展性的增加近233%和150%。采用动态加载试验来研究同轴核 - 壳复合纳米纤维在各种温度和频率下的粘弹性。同轴纳米纤维的储存和损失模量的结果表明PLA和PVA层之间的强物质相互作用,这有助于观察到的良好机械行为。与原始材料相比,同轴PLA / PVA纳米纤维在轴向载荷下更好的抗蠕变性提供了两种构成材料之间的物理相互作用的进一步证据。简单的线性粘弹性模型用于量化原始和同轴材料中蠕变应变的演变。该研究可以有助于了解观察到的粘弹性行为与PLA和PVA同轴芯/壳纳米纤维的内部结构之间的物理关系。

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