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通过机械训练强化定向聚(L-乳酸)单丝。

Strengthen oriented poly (L-lactic acid) monofilaments via mechanical training.

机构信息

School of Mechanical Engineering, Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing 211189, China.

School of Mechanical and Electronic Engineering, Nanjing Forestry University, Nanjing 210037, China.

出版信息

Int J Biol Macromol. 2024 Apr;263(Pt 2):129975. doi: 10.1016/j.ijbiomac.2024.129975. Epub 2024 Feb 28.

Abstract

Polymer materials have found extensive applications in the clinical and medical domains due to their exceptional biocompatibility and biodegradability. Compared to metallic counterparts, polymers, particularly Poly (L-lactic acid) (PLLA), are more suitable for fabricating biodegradable stents. As a viscoelastic material, PLLA monofilaments exhibit a creep phenomenon under sustained tensile stress. This study explores the use of creep to enhance the mechanical attributes of PLLA monofilaments. By subjecting the highly oriented monofilaments to controlled, constant force stretching, we achieved notable improvements in their mechanical characteristics. The results, as confirmed by tensile testing and dynamic mechanical analysis, revealed a remarkable 67 % increase in total elongation and over a 20 % rise in storage modulus post-mechanical training. Further microscopic analyses, including Atomic Force Microscopy (AFM) and Scanning Electron Microscopy (SEM), revealed enhanced spacing and cavity formation. These mechanical advancements are attributed to the unraveling and a more orderly arrangement of molecular chains in the amorphous regions. This investigation offers a promising approach for augmenting the mechanical properties of PLLA monofilaments, potentially benefiting their application in biomedical engineering.

摘要

高分子材料由于其优异的生物相容性和可生物降解性,在临床和医学领域得到了广泛的应用。与金属材料相比,聚合物,特别是聚(L-乳酸)(PLLA),更适合制造可生物降解的支架。作为一种粘弹性材料,PLLA 单丝在持续拉伸应力下表现出蠕变现象。本研究探讨了利用蠕变来增强 PLLA 单丝的机械性能。通过对高度取向的单丝进行受控的、恒力拉伸,我们显著改善了它们的机械特性。拉伸试验和动态力学分析的结果表明,机械训练后总伸长率提高了 67%,储能模量提高了 20%以上。进一步的微观分析,包括原子力显微镜(AFM)和扫描电子显微镜(SEM),揭示了增强的间距和空腔形成。这些机械上的进步归因于无定形区域中分子链的解开和更有序的排列。这项研究为增强 PLLA 单丝的机械性能提供了一种有前途的方法,可能有益于它们在生物医学工程中的应用。

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