Florian David C, Melia Michael A, Steuer Fritz W, Briglia Bruce F, Purzycki Michael K, Scully John R, Fitz-Gerald James M
Department of Biomedical Engineering, University of Virginia, Charlottesville, Virginia 22904.
Department of Material Science and Engineering, University of Virginia, Charlottesville, Virginia 22904.
Biointerphases. 2017 May 11;12(2):021003. doi: 10.1116/1.4983272.
As a lightweight metal with mechanical properties similar to natural bone, Mg and its alloys are great prospects for biodegradable, load bearing implants. However, rapid degradation and H gas production in physiological media has prevented widespread use of Mg alloys. Surface heterogeneities in the form of intermetallic particles dominate the corrosion response. This research shows that surface homogenization significantly improved the biological corrosion response observed during immersion in simulated body fluid (SBF). The laser processed Mg alloy exhibited a 50% reduction in mass loss and H evolution after 24 h of immersion in SBF when compared to the wrought, cast alloy. The laser processed samples exhibited increased wettability as evident from wetting angle studies, further suggesting improved biocompatibility. Electrochemical analysis by potentiodynamic polarization measurements showed that the anodic and cathodic kinetics were reduced following laser processing and are attributed to the surface chemical homogeneity.
作为一种机械性能与天然骨骼相似的轻质金属,镁及其合金在可生物降解的承重植入物方面具有巨大的应用前景。然而,镁合金在生理介质中快速降解并产生氢气,这阻碍了其广泛应用。金属间化合物颗粒形式的表面不均匀性主导了腐蚀反应。本研究表明,表面均匀化显著改善了在模拟体液(SBF)中浸泡时观察到的生物腐蚀反应。与锻造、铸造合金相比,激光处理后的镁合金在SBF中浸泡24小时后,质量损失和氢气析出减少了50%。从接触角研究可以明显看出,激光处理后的样品润湿性增加,进一步表明生物相容性得到改善。动电位极化测量的电化学分析表明,激光处理后阳极和阴极动力学降低,这归因于表面化学均匀性。