IMPROVING THE LONG-TERM DURABILITY OF POLYMERS USED IN BIOMEDICAL APPLICATIONS.

Mohammad Motaher Hossain, Ravi Chandra Madasani
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Abstract

Hydrophobic surfaces can improve the long-term mechanical response of polymers by delaying their degradation caused by moisture absorption over time. This improvement in long-term mechanical performance can significantly increase the lifespan of polymers used in various biomedical applications, such as total joint replacement prostheses applications. Although a number of surface modification techniques have been developed over the years, such as introduction of various textures on the surface; their specific influences on hydrophobicity enhancement as well as long-term mechanical performance are yet to be fully understood. In this study, surface textures, with variation in type and geometry, are introduced on model Ultrahigh Molecular Weight Polyethylene (UHMWPE) and High Density Polyethylene (HDPE) surfaces to study the effect of surface modification on hydrophobicity and long-term mechanical performance under environmental conditions. The results show that introduction of surface textures significantly improves the hydrophobicity of model polymers. Texture length or diameter significantly affects the improvement in hydrophobicity. However, texture spacing does not have significant influence on the improvement in hydrophobicity. How this improvement in hydrophobicity facilitates improving the long-term mechanical performance under environmental conditions is investigated. The study provides useful guidelines to improve the long-term mechanical response of polymers for various applications, including biomedical applications.

提高生物医学应用中所用聚合物的长期耐久性。
疏水表面可以延缓聚合物因长期吸湿而引起的降解,从而改善聚合物的长期机械性能。这种长期机械性能的改善可以显著延长聚合物在各种生物医学应用(如全关节置换假体应用)中的使用寿命。尽管多年来已开发出许多表面改性技术,如在表面引入各种纹理,但它们对疏水性增强和长期机械性能的具体影响仍有待充分了解。本研究在超高分子量聚乙烯(UHMWPE)和高密度聚乙烯(HDPE)模型表面引入了不同类型和几何形状的表面纹理,以研究表面改性对疏水性和环境条件下长期机械性能的影响。结果表明,表面纹理的引入可显著改善模型聚合物的疏水性。纹理长度或直径对疏水性的改善有很大影响。然而,纹理间距对疏水性的改善没有显著影响。研究还探讨了疏水性的改善如何有助于提高环境条件下的长期机械性能。该研究为改善聚合物在各种应用(包括生物医学应用)中的长期机械响应提供了有用的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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