Shore hardness of bulk polyurethane affects the properties of nanofibrous materials differently

IF 3.3 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Iwona Łopianiak , Beata Butruk-Raszeja , Michał Wojasiński
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Abstract

The present study shows the effect of the hardness of bulk polyurethane on the properties of nanofibrous materials produced in the solution blow spinning process. This study focuses on nanofibrous materials made from medical-grade polyurethanes with different hardness values on the Shore scale, from 75A to 75D. We aimed to determine the effect of the intrinsic properties of polyurethane used to produce nanofibers on the tensile properties of the resulting nanofibrous materials and in vitro platelet adhesiveness. This study used a solution blow spinning process to produce nanofibrous materials from polyurethane solutions. It evaluates their properties using scanning electron microscopy, followed by porosity determination, tensile testing, and platelet adhesion assays. Generally, the bulk polymer's Shore hardness affects nanofibrous products' porosity and tensile properties. In the tested Shore hardness range, the most visible differences in material properties were observed for the fibers produced from the hardest (75D) and softest (75A) polyurethanes. The nanofibrous material produced using 75D polyurethane exhibited the highest porosity, up to approximately 0.87, owing to the low packing density of the stiff nanofibers. It also remained the stiffest, with the highest Young's modulus. On the other hand, the softest 75A polyurethane produced a less porous nanofibrous mat with the highest tensile strength among the tested polyurethanes. All tested nanofibrous materials retained their platelet adhesion resistance upon processing into nanofibers, with a mean platelet coverage below 1 % of the nanofibrous mat surface. The study results provide insights into the relationship between the hardness of bulk polyurethane and the properties of nanofibrous materials, which can be useful in various biomedical applications, particularly in producing tissue-engineered vascular grafts.
块状聚氨酯的肖氏硬度对纳米纤维材料的性能有不同的影响。
本研究显示了块状聚氨酯的硬度对溶液吹塑纺丝工艺生产的纳米纤维材料性能的影响。本研究的重点是用邵氏硬度值从 75A 到 75D 不同的医用级聚氨酯制成的纳米纤维材料。我们的目的是确定用于生产纳米纤维的聚氨酯的固有特性对所得纳米纤维材料的拉伸特性和体外血小板粘附性的影响。本研究采用溶液吹塑纺丝工艺,利用聚氨酯溶液生产纳米纤维材料。该研究使用扫描电子显微镜评估了纳米纤维材料的特性,随后进行了孔隙率测定、拉伸测试和血小板粘附试验。一般来说,块状聚合物的肖氏硬度会影响纳米纤维产品的孔隙率和拉伸性能。在测试的肖氏硬度范围内,用最硬(75D)和最软(75A)的聚氨酯生产的纤维在材料特性上的差异最为明显。使用 75D 聚氨酯生产的纳米纤维材料孔隙率最高,约为 0.87,这是因为硬质纳米纤维的堆积密度较低。它也是最硬的,具有最高的杨氏模量。另一方面,最软的 75A 聚氨酯产生的纳米纤维垫孔隙率较低,在测试的聚氨酯中拉伸强度最高。所有测试的纳米纤维材料在加工成纳米纤维后都保持了其抗血小板粘附性,平均血小板覆盖率低于纳米纤维毡表面的 1%。研究结果有助于深入了解块状聚氨酯的硬度与纳米纤维材料性能之间的关系,这些材料可用于各种生物医学应用,尤其是生产组织工程血管移植物。
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来源期刊
Journal of the Mechanical Behavior of Biomedical Materials
Journal of the Mechanical Behavior of Biomedical Materials 工程技术-材料科学:生物材料
CiteScore
7.20
自引率
7.70%
发文量
505
审稿时长
46 days
期刊介绍: The Journal of the Mechanical Behavior of Biomedical Materials is concerned with the mechanical deformation, damage and failure under applied forces, of biological material (at the tissue, cellular and molecular levels) and of biomaterials, i.e. those materials which are designed to mimic or replace biological materials. The primary focus of the journal is the synthesis of materials science, biology, and medical and dental science. Reports of fundamental scientific investigations are welcome, as are articles concerned with the practical application of materials in medical devices. Both experimental and theoretical work is of interest; theoretical papers will normally include comparison of predictions with experimental data, though we recognize that this may not always be appropriate. The journal also publishes technical notes concerned with emerging experimental or theoretical techniques, letters to the editor and, by invitation, review articles and papers describing existing techniques for the benefit of an interdisciplinary readership.
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