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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Promoting bone-like apatite formation on titanium alloys through nanocrystalline tantalum nitride coatings
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Promoting bone-like apatite formation on titanium alloys through nanocrystalline tantalum nitride coatings

机译:通过纳米晶氮化钽涂层促进钛合金上的骨状磷灰石形成

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摘要

The study aims to advance the applicability of titanium alloys as bone implant materials by tackling some important aspects of surface robustness and bioactivity. To do so, biologically active Ta-N nanocrystalline coatings were engineered on Ti-6Al-4V alloy substrates by reactive sputter deposition using a double glow discharge plasma technique. The surface morphology, phase composition and structure of the coatings were characterized using atomic force microscopy (AFM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The newly developed coatings are extremely dense, adherent and composed of a cubic TaN phase and a minor fraction of hexagonal Ta2N phase. The microstructure of Ta-N coatings consists of nanocrystallites of about 15-20 nm in diameter, having a strong TaN(200)-oriented texture. Moreover, the coatings exhibit a uniform nanopillar structure on the surface, critical for the observed bioactivity. Scratching tests were performed to evaluate the adhesion strength between the Ta-N coatings and Ti-6Al-4V alloy substrates. The Ta-N coatings were found to exhibit a high scratch resistance and are thus suitable for load-bearing applications. The apatite-inducing ability of the coatings was evaluated in vitro using a simulated body fluid (SBF) that has almost equal compositions of inorganic ions to human blood plasma. After soaking in the solution for up to 14 days, only a few apatite particulates were observed on the surface of untreated Ti-6Al-4V alloy. By contrast, the surface of the Ta-N coatings was completely covered by a compact, AB-type apatite layer free of micro-cracks. High resolution transmission electron microscopy (HRTEM) observations reveal that after soaking for 14 days, the apatite layer, formed through a biomimetic process, comprises closely packed, needle-shaped apatite crystals of 34.5 +/- 12.4 nm in length and 6.0 +/- 0.2 nm in width. Moreover, nanotwins were identified in apatite, reminiscent of those found in bone minerals. The negatively-charged surface, combined with a unique surface structure of the Ta-N nanoceramic coatings, is believed to be responsible for the formation of a homogenous, compact bone-like apatite layer. The Ta-N nanoceramic coatings are expected to find applications as an integral part of biomaterials used in bone repair and replacement.
机译:该研究旨在通过解决表面坚固性和生物活性的一些重要方面来提高钛合金作为骨植入材料的适用性。为此,通过使用双辉光放电等离子体技术的反应溅射沉积,在Ti-6Al-4V合金基板上设计了具有生物活性的Ta-N纳米晶涂层。使用原子力显微镜(AFM),X射线衍射(XRD),X射线光电子能谱(XPS),扫描电子显微镜(SEM)和透射电子显微镜(TEM)对涂层的表面形貌,相组成和结构进行了表征)。新开发的涂层非常致密,附着并由立方TaN相和少量六角形Ta2N相组成。 Ta-N涂层的微观结构由直径约15-20 nm的纳米微晶组成,具有很强的TaN(200)取向结构。此外,涂层在表面上显示出均匀的纳米柱结构,这对于观察到的生物活性至关重要。进行刮擦测试以评估Ta-N涂层与Ti-6Al-4V合金基材之间的粘合强度。发现Ta-N涂层表现出高的耐刮擦性,因此适用于承重应用。使用模拟体液(SBF)在体外评估了涂层的磷灰石诱导能力,该体液具有与人体血浆几乎相同的无机离子组成。在溶液中浸泡多达14天后,未处理的Ti-6Al-4V合金表面仅观察到少量磷灰石颗粒。相比之下,Ta-N涂层的表面完全被无微裂纹的致密AB型磷灰石层覆盖。高分辨率透射电子显微镜(HRTEM)观察表明,浸泡14天后,通过仿生过程形成的磷灰石层包括紧密堆积的针状磷灰石晶体,其长度为34.5 +/- 12.4 nm,6.0 +/-宽度为0.2 nm。此外,在磷灰石中发现了纳米孪晶,让人联想到在骨骼矿物质中发现的纳米孪晶。负电荷的表面与Ta-N纳米陶瓷涂层的独特表面结构相结合,被认为是形成均匀,致密的骨状磷灰石层的原因。 Ta-N纳米陶瓷涂层有望作为骨修复和置换中使用的生物材料的组成部分而找到应用。

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