壳聚糖/纤维素纳米纤维/阿司匹林聚合物纳米复合膜的形态和机械特性

Omolade Ojo, F. P. Andrew, Abubakar H. Idris, J. M. Yelwa
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引用次数: 0

摘要

本研究考察了由壳聚糖、纳米纤维素和阿司匹林组成的复合薄膜的机械性能。这种生物材料具有良好的特性,并具有多种应用潜力。这种复合材料是利用精确的制造技术合成的,由壳聚糖作为生物相容性基质,纳米纤维素用于增强结构的完整性,阿司匹林则具有额外的治疗功效。这种复合材料的拉伸强度、拉伸模量和断裂伸长率都有所提高。实验结果表明,随着纤维素纳米纤维负载量的增加,拉伸强度和拉伸模量呈上升趋势。这一观察结果表明,壳聚糖和 CNFs 的共同作用可协同改善机械稳健性。随着 CNF 负载的增加,断裂伸长率也有所降低。材料的拉伸模量和断裂伸长率进一步强调了材料的适应性。这项研究为开发可持续包装材料提供了机遇,因为壳聚糖和纤维素的生物可降解特性符合当前的环保重点。由壳聚糖、纤维素纳米纤维和阿司匹林组成的复合薄膜展示了机械坚固性和治疗特性的显著结合。这项研究为生物材料设计的未来尝试奠定了基础,它引入了一种多功能复合材料,有可能对材料科学和医疗保健等各个领域产生重大影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Morphological and mechanical properties of chitosan/cellulose nanofibrils/aspirin polymer nanocomposite films
This study examined the mechanical properties of composite films composed of chitosan, cellulose nanofibrils, and aspirin. This biomaterial has promising characteristics and holds potential for various applications. The composite material, which was synthesised using precise fabrication techniques, consists of chitosan as a biocompatible substrate, cellulose nanofibrils for enhancing structural integrity, and aspirin for additional therapeutic benefits. The composite material exhibited increased tensile strength, tensile modulus, and elongation at break. The experimental results demonstrate that the tensile strength and tensile modulus exhibit an upward trend as the loading of cellulose nanofibrils (CNFs) increases. This observation suggests a synergistic improvement in mechanical robustness, which can be attributed to the combined effects of chitosan and CNFs. A reduction in elongation at break was seen as the loading of CNFs increased. The adaptability of the material is further emphasised by its tensile modulus and elongation at break. This study presents opportunities for the development of sustainable packaging materials, as the biodegradable properties of chitosan and cellulose are in line with current environmental priorities. The composite films composed of chitosan, cellulose nanofibrils, and aspirin demonstrate a notable combination of mechanical robustness and therapeutic properties. This research establishes the foundation for future attempts in biomaterial design by introducing a versatile composite that has the potential to significantly influence various sectors, including materials science and healthcare.
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