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通过熔融长丝制造法制备的聚乳酸薄膜的机械性能和水解性能

Mechanical and hydrolytic properties of thin polylactic acid films by fused filament fabrication.

作者信息

Ekinci Alper, Gleadall Andy, Johnson Andrew A, Li Ling, Han Xiaoxiao

机构信息

Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough, LE11 3TU, UK.

School of Design & Creative Arts, Loughborough University, Loughborough, LE11 3TU, UK.

出版信息

J Mech Behav Biomed Mater. 2021 Feb;114:104217. doi: 10.1016/j.jmbbm.2020.104217. Epub 2020 Nov 24.

Abstract

Thin polymeric films are widely used as medical applications such as cell culture, stent, drug delivery and mechanical fixation. One of the most commonly used materials is polylactic acid (PLA) - a material, which is non-toxic, biodegradable and biocompatible. Fused filament fabrication (FFF) is a preferable additive manufacturing technique to manufacture polymers, where PLA is one of the most common materials. FFF is a promising technique for customised biomedical applications due to its relatively low cost and geometrical flexibility where biomedical applications are patient tailored. This study is the first to consider FFF monolayered thin films of PLA in terms of mechanical and hydrolytic properties at 37 °C in vitro degradation. Throughout degradation, the reduction in mechanical properties was examined by analysing molecular weight and thermal properties. FFF monolayered PLA underwent autocatalytic bulk degradation with no proof of significant mass loss. Young's modulus, ultimate tensile strength and molecular weight reduced by approximately 60%, 86%, and 80% after 280 days, respectively, while the degree of crystallinity increased by 143% in comparison to benchmark thin films at day 0. It was found that the decrease in mechanical properties was more sensitive to the increase in crystallinity in the early stage of the degradation, while the molecular weight was more dominant in the late stage of the degradation. This study provides practical information in terms of mechanical properties to support medical device designers in a range of potential end-use biomedical applications to achieve safe functional products over the required degradation lifetime.

摘要

薄聚合物薄膜广泛应用于细胞培养、支架、药物递送和机械固定等医学领域。最常用的材料之一是聚乳酸(PLA)——一种无毒、可生物降解且具有生物相容性的材料。熔融丝材制造(FFF)是制造聚合物的一种优选增材制造技术,其中PLA是最常见的材料之一。由于其成本相对较低且具有几何形状灵活性(生物医学应用是针对患者定制的),FFF对于定制生物医学应用来说是一项很有前景的技术。本研究首次在体外37°C降解条件下,从机械性能和水解性能方面考虑PLA的FFF单层薄膜。在整个降解过程中,通过分析分子量和热性能来检测机械性能的降低情况。FFF单层PLA经历了自催化本体降解,没有明显质量损失的证据。280天后,杨氏模量、极限拉伸强度和分子量分别降低了约60%、86%和80%,而与第0天的基准薄膜相比,结晶度增加了143%。研究发现,在降解早期,机械性能的降低对结晶度的增加更为敏感,而在降解后期,分子量起更主要的作用。本研究在机械性能方面提供了实用信息,以支持医疗设备设计师在一系列潜在的最终用途生物医学应用中,在所需的降解寿命内实现安全的功能性产品。

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