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Enhanced Tribological and Bacterial Resistance of Carbon Nanotube with Ceria- and Silver-Incorporated Hydroxyapatite Biocoating

机译:铈和银结合的羟基磷灰石生物涂层增强碳纳米管的摩擦学和细菌耐受性

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摘要

Pertaining to real-life applications (by scaling up) of hydroxyapatite (HA)-based materials, herein is a study illustrating the role of carbon nanotube (CNT) reinforcement with ceria (CeO2) and silver (Ag) in HA on titanium alloy (TiAl6V4) substrate, utilizing the plasma-spraying processing technique, is presented. When compared with pure HA coating enhanced hardness (from 2.5 to 5.8 GPa), elastic modulus (from 110 to 171 GPa), and fracture toughness (from 0.7 to 2.2 MPa·m1/2) elicited a reduced wear rate from 55.3 × 10−5 mm3·N−1·m−1 to 2.1 × 10−5 mm3·N−1·m−1 in HA-CNT-CeO2-Ag. Besides, an order of magnitude lower Archard’s wear constant and a 41% decreased shear stress by for HA-CNT-CeO2-Ag coating depicted the effect of higher hardness and modulus of a material to control its wear phenomenon. Antibacterial property of 46% (bactericidal) is ascribed to Ag in addition to CNT-CeO2 in HA. Nonetheless, the composite coating also portrayed exaggerated L929 fibroblast cell growth (4.8 times more than HA), which was visualized as flat and elongated cells with multiple filopodial protrusions. Hence, synthesis of a material with enhanced mechanical integrity resulting in tribological resistance and cytocompatible efficacy was achieved, thereupon making HA-CNT-CeO2-Ag a scalable potent material for real-life load-bearing implantable bio-coating.
机译:与基于羟基磷灰石(HA)的材料在现实生活中的应用(通过按比例放大)有关,本文的一项研究表明了二氧化铈(CeO2)和银(Ag)增强碳纳米管(CNT)在钛合金上的HA中的作用(介绍了利用等离子喷涂处理技术的TiAl6V4)衬底。与纯HA涂层相比,增强的硬度(从2.5至5.8 GPa),弹性模量(从110至171 GPa)和断裂韧性(从0.7至2.2 MPa·m 1/2 )引起磨损率从55.3×10 −5 mm 3 ·N −1 ·m -1 降低到2.1× HA-CNT-CeO2-Ag中的10 −5 mm 3 ·N -1 ·m -1 此外,对于HA-CNT-CeO2-Ag涂层,Archard的磨损常数降低了一个数量级,剪切应力降低了41%,这说明了较高的硬度和模量可以控制材料的磨损现象。除HA中的CNT-CeO2外,Ag还具有46%(杀菌)的抗菌性能。尽管如此,复合涂层还描绘了夸大的L929成纤维细胞生长(是HA的4.8倍),可视为扁平且细长的细胞,有多个丝状突起。因此,实现了具有增强的机械完整性的材料的合成,从而导致了摩擦阻力和细胞相容性功效,随即使HA-CNT-CeO2-Ag成为用于现实生活中的可承受负荷的可植入生物涂层的可扩展有效材料。

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