Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, Milano - Italy.
J Appl Biomater Funct Mater. 2013 Sep 13;11(2):e106-16. doi: 10.5301/JABFM.2012.9419.
Titanium and its alloy represent the most commonly used biomaterials worldwide designed for bone-contact under-load applications, which often require specific mechanical properties. In particular, a large number of different biomimetic surface treatments have been developed to speed up the osteointegration process, which facilitates a reduction in recovery time.
The aim of this work is to investigate the physical-chemical, mechanical and bioactivity properties of an innovative biomimetic treatment on titanium performed using Anodic Spark Deposition (ASD) electrochemical treatment.
The proposed ASD treatment was obtained in an electrochemical solution containing silicon, calcium, phosphorous and sodium followed by an alkali etching. Surface morphology was characterized using SEM and laser profilometry. Chemical and structural composition was assessed by EDS, ICP/OES and XRD analysis. Vickers micro hardness and static contact angle measurements were performed to assess the surface mechanical properties and wettability.
The proposed anodization treatment was capable of providing a chemical and morphologic modified titanium oxide layer, adherent and characterized by superhydrophilic properties. The microporous morphology was enriched by calcium, silicon, sodium and phosphorous.After incubation in Kokubo's Simulated Body Fluid (SBF) the treatment showed very high mineralization potential compared to the reference surfaces, accounting for a deposited hydroxyapatite layer as thick as 12 μm after 14 days of SBF incubation.
On the basis of the results obtained in this study, we believe that the novel silicon-based ASD biomimetic treatment represents a promising treatment capable of enhancing the osteointegration of titanium for dental and orthopedic applications.
钛及其合金是全球应用最广泛的生物材料,用于接触骨骼并承受负载的应用,这些应用通常需要特定的机械性能。特别是,已经开发出大量不同的仿生表面处理方法来加速骨整合过程,从而缩短康复时间。
本工作旨在研究采用阳极火花沉积(ASD)电化学处理对钛进行的创新仿生处理的物理化学、机械和生物活性特性。
提出的 ASD 处理是在含有硅、钙、磷和钠的电化学溶液中进行的,然后进行碱蚀。使用 SEM 和激光轮廓仪对表面形貌进行了表征。通过 EDS、ICP/OES 和 XRD 分析评估了化学成分和结构组成。通过维氏显微硬度和静态接触角测量来评估表面机械性能和润湿性。
所提出的阳极氧化处理能够提供化学和形貌改性的氧化钛层,具有附着性和超亲水性。微孔形貌富含钙、硅、钠和磷。在 Kokubo 的模拟体液(SBF)中孵育后,与参考表面相比,处理后的矿化潜力非常高,在 SBF 孵育 14 天后可沉积 12 μm 厚的羟基磷灰石层。
根据本研究获得的结果,我们认为新型基于硅的 ASD 仿生处理是一种有前途的处理方法,能够增强钛在牙科和骨科应用中的骨整合。