Development of 4D-Printed Arterial Stents Utilizing Bioinspired Architected Auxetic Materials.

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY Biomimetics Pub Date : 2025-01-26 DOI:10.3390/biomimetics10020078
Nikolaos Kladovasilakis, Ioannis Filippos Kyriakidis, Emmanouil K Tzimtzimis, Eleftheria Maria Pechlivani, Konstantinos Tsongas, Dimitrios Tzetzis
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Abstract

The convergence of 3D printing and auxetic materials is paving the way for a new era of adaptive structures. Auxetic materials, known for their unique mechanical properties, such as a negative Poisson's ratio, can be integrated into 3D-printed objects to enable them to morph or deform in a controlled manner, leading to the creation of 4D-printed structures. Since the first introduction of 4D printing, scientific interest has spiked in exploring its potential implementation in a wide range of applications, from deployable structures for space exploration to shape-adaptive biomechanical implants. In this context, the current paper aimed to develop 4D-printed arterial stents utilizing bioinspired architected auxetic materials made from biocompatible and biodegradable polymeric material. Specifically, three different auxetic materials were experimentally examined at different relative densities, under tensile and compression testing, to determine their mechanical behavior. Based on the extracted experimental data, non-linear hyperelastic finite element material models were developed in order to simulate the insertion of the stent into a catheter and its deployment in the aorta. The results demonstrated that among the three examined structures, the 'square mode 3' structure revealed the best performance in terms of strength, at the same time offering the necessary compressibility (diameter reduction) to allow insertion into a typical catheter for stent procedures.

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利用仿生辅助材料的3d打印动脉支架的发展。
3D打印和辅助材料的融合为自适应结构的新时代铺平了道路。增塑剂材料以其独特的机械性能而闻名,例如负泊松比,可以集成到3d打印对象中,使它们能够以受控的方式变形或变形,从而创建3d打印结构。自4D打印首次引入以来,科学兴趣在探索其在广泛应用中的潜在实施方面飙升,从用于空间探索的可部署结构到形状自适应生物力学植入物。在此背景下,本论文旨在利用由生物相容性和可生物降解的聚合物材料制成的生物启发建筑补体材料开发3d打印动脉支架。具体来说,在不同的相对密度下,通过拉伸和压缩测试,实验检测了三种不同的auxetic材料,以确定它们的力学行为。基于提取的实验数据,建立了非线性超弹性有限元材料模型,以模拟支架插入导管并在主动脉中展开。结果表明,在三种检测结构中,“方形模式3”结构在强度方面表现出最佳性能,同时提供必要的压缩性(直径减小),以允许插入典型的导管进行支架手术。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
期刊最新文献
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