University of Toronto - Toronto Metropolitan University, Canada.
Department of Chemical Engineering, Faculty Oil, Gas and Renewable Energy Engineering, University of Zawia, Libya.
Med Eng Phys. 2023 Oct;120:104055. doi: 10.1016/j.medengphy.2023.104055. Epub 2023 Sep 19.
The design and development of a new class of biomaterial has gained particular interest in producing polymer scaffold for biomedical applications. Mechanical properties, biological and controlling pores scaffold of the biomaterials are important factors to encourage cell growth and eventual tissue repair and regeneration. In this study, poly-ε-caprolactone (PCL) /polyethylene glycol (PEG) copolymer (80/20) incorporated with CNF scaffolds were made employing solvent casting and particulate leaching methods. Four mass percentages of CNF (1, 2.5, 5, and 10 wt.%) were integrated into the copolymer through a silane coupling agent. Mechanical properties were determined using Tensile Tester data acquisition to investigate the effect of porosity, pore size, and CNF contents. Tensile strength obtained for PCL/PEG- 5 wt.% CNF was 16 MPa, which drastically decreased after creating a porous structure to 7.1 MPa. The optimum parameters of the results were found to be 5 wt.% for CNF, 240 μm for pore size, and 83% for porosity. Scanning electron microscopy (SEM) micrograph reveals that consistent pore size and regular pore shape were accomplished after the addition of CNF-5 wt.% into PCL/PEG. The results of mass loss of PCL/PEG reinforced-CNF 1 % have clearly enhanced to double values compared with PCL/PEG copolymer and three times with PCL/PEG scaffold-CNF 1 %. In addition, all PCL/PEG reinforced and scaffold- CNF were partially disintegrated under composting conditions confirming their biodegradable behavior. This also provides a possible solution for the end life of these biomaterials.
新型生物材料的设计和开发在制备用于生物医学应用的聚合物支架方面引起了特别关注。生物材料的机械性能、生物和控制孔支架是促进细胞生长和最终组织修复和再生的重要因素。在这项研究中,采用溶剂浇铸和颗粒沥滤法制备了聚己内酯(PCL)/聚乙二醇(PEG)共聚物(80/20)/CNF 支架。通过硅烷偶联剂将四种质量百分比的 CNF(1、2.5、5 和 10wt.%)整合到共聚物中。通过拉伸试验机数据采集来确定机械性能,以研究孔隙率、孔径和 CNF 含量的影响。PCL/PEG-5wt.%CNF 的拉伸强度为 16MPa,在形成多孔结构后急剧下降至 7.1MPa。结果的最佳参数被发现为 CNF 的 5wt.%、孔径为 240μm 和孔隙率为 83%。扫描电子显微镜(SEM)照片显示,在添加 5wt.%CNF 后,PCL/PEG 中实现了一致的孔径和规则的孔形状。与 PCL/PEG 共聚物相比,PCL/PEG 增强-CNF 1%的质量损失明显增加了一倍,与 PCL/PEG 支架-CNF 1%相比增加了三倍。此外,所有 PCL/PEG 增强和支架-CNF 在堆肥条件下都部分分解,证实了它们的可生物降解性。这也为这些生物材料的最终寿命提供了一种可能的解决方案。