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Surface modification of Ti-6A1-4V alloy for biomineralization and specific biological response: Part I, inorganic modification

机译:用于生物矿化和特定生物响应的Ti-6A1-4V合金的表面改性:第一部分,无机改性

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摘要

Titanium and its alloys represent the gold standard for orthopaedic and dental prosthetic devices, because of their good mechanical properties and biocom-patibility. Recent research has been focused on surface treatments designed to promote their rapid osteointegration also in case of poor bone quality. A new surface treatment has been investigated in this research work, in order to improve tissue integration of titanium based implants. The surface treatment is able to induce a bioactive behaviour, without the introduction of a coating, and preserving mechanical properties of Ti6A14V substrates (fatigue resistance). The application of the proposed technique results in a complex surface topography, characterized by the combination of a micro-roughness and a nanotexture, which can be coupled with the conventional macro-roughness induced by blasting. Modified metallic surfaces are rich in hydroxyls groups: this feature is extremely important for inorganic bioactivity (in vitro and in vivo apatite precipitation) and also for further functionalization procedures (grafting of biomolecules). Modified Ti6A14V induced hydroxyapatite precipitation after 15 days soaking in simulated body fluid (SBF). The process was optimised in order to not induce cracks or damages on the surface. The surface oxide layer presents high scratch resistance.
机译:钛及其合金代表了骨科和牙科修复设备的金标准,因为它们具有良好的机械性能和生物相容性。最近的研究集中在表面处理上,这些表面处理旨在在骨骼质量差的情况下也促进其快速的骨整合。为了改善钛基植入物的组织整合性,在这项研究工作中对新的表面处理进行了研究。表面处理无需引入涂层即可诱导生物活性,并保持Ti6A14V基材的机械性能(抗疲劳性)。所提出技术的应用导致了复杂的表面形貌,其特征在于微粗糙度和纳米纹理的结合,可以与喷砂引起的常规宏观粗糙度相结合。改性的金属表面富含羟基:此功能对于无机生物活性(体外和体内磷灰石沉淀)以及进一步的功能化程序(生物分子移植)都非常重要。浸泡在模拟体液(SBF)中15天后,改性的Ti6A14V引起羟基磷灰石沉淀。为了避免在表面上产生裂纹或损坏,对工艺进行了优化。表面氧化物层具有高的耐划伤性。

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  • 来源
    《Journal of materials science》 |2011年第3期|p.533-545|共13页
  • 作者单位

    DISMIC Department, Politecnico di Torino, C.so Duca degli Abruzzi, 24, 10129 Turin, Italy;

    DISMIC Department, Politecnico di Torino, C.so Duca degli Abruzzi, 24, 10129 Turin, Italy;

    DISMIC Department, Politecnico di Torino, C.so Duca degli Abruzzi, 24, 10129 Turin, Italy;

    DISMIC Department, Politecnico di Torino, C.so Duca degli Abruzzi, 24, 10129 Turin, Italy;

    Physical Chemistry and Electrochemistry Department,University of Milano, Via Golgi 19, 20133 Milano, Italy;

    Chemistry, Materials and Chemical Engineering Department G.Natta, Politecnico di Milano, Via Mancinelli 7, 20131 Milano,Italy;

    ISTEC-CNR, Strada delle Cacce 73, 10135 Turin, Italy;

    Traumatology Orthopaedics and Occupational Medicine Department, University of Turin, Via Zuretti, 29,10126 Turin, Italy;

    DISMIC Department, Politecnico di Torino, C.so Duca degli Abruzzi, 24, 10129 Turin, Italy;

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