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Mechanical Properties of Electrospun Blended Fibrinogen: PCL Nanofibers

机译:电纺混纺纤维蛋白原的力学性能:PCL纳米纤维

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摘要

Electrospun nanofibers manufactured from biocompatible materials are used in numerous bioengineering applications, such as tissue engineering, creating organoids or dressings, and drug delivery. In many of these applications, the morphological and mechanical properties of the single fiber affect their function. We used a combined atomic force microscope (AFM)/optical microscope technique to determine the mechanical properties of nanofibers that were electrospun from a 50:50 fibrinogen:PCL (poly-ε-caprolactone) blend. Both of these materials are widely available and biocompatible. Fibers were spun onto a striated substrate with 6 μm wide grooves, anchored with epoxy on the ridges and pulled with the AFM probe. The fibers showed significant strain softening, as the modulus decreased from an initial value of 1700 MPa (5–10% strain) to 110 MPa (>40% strain). Despite this extreme strain softening, these fibers were very extensible, with a breaking strain of 100%. The fibers exhibited high energy loss (up to 70%) and strains larger than 5% permanently deformed the fibers. These fibers displayed the stress–strain curves of a ductile material. We provide a comparison of the mechanical properties of these blended fibers with other electrospun and natural nanofibers. This work expands a growing library of mechanically characterized, electrospun materials for biomedical applications.
机译:从生物相容性材料制造的Electur纺纳米纤维用于许多生物工程应用,例如组织工程,产生有机体或敷料,以及药物递送。在许多这些应用中,单纤维的形态和力学性能影响其功能。我们使用了组合的原子力显微镜(AFM)/光学显微镜技术,以确定从50:50纤维蛋白原中驻肌肌的纳米纤维的机械性能:PCL(聚-ε-己内酯)混合物。这两种材料都广泛可用和生物相容性。纤维旋转到具有6μm宽凹槽的条纹基底上,锚固在脊上的环氧树脂并用AFM探针拉动。纤维显示出显着的菌株软化,因为模量从初始值减少1700MPa(5-10%菌株)至110MPa(> 40%菌株)。尽管这种极端菌株软化,但这些纤维非常伸长,断裂应变为100%。纤维表现出高能量损失(高达70%),大于5%的菌株永久性地变形纤维。这些纤维显示了延性材料的应力 - 应变曲线。我们提供与其他电纺和天然纳米纤维的这些混合纤维的机械性能的比较。这项工作扩展了用于生物医学应用的机械表征的越来越多的库。

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