School of Materials Science and Engineering, South China University of Technology, Guangzhou 510641, China.
J Mech Behav Biomed Mater. 2012 Dec;16:9-20. doi: 10.1016/j.jmbbm.2012.06.020. Epub 2012 Aug 21.
Behaviors of silicon nitride films and their relation to blood compatibility and biomechanical have been interesting subjects to researchers. A systematic blood compatibility and biomechanical property investigation on the deposition of silicon-nitride films under varying N₂ and CF₄ flows was carried out by direct current unbalanced magnetron sputtering techniques. Significant role of surface property, chemical bonding state of silicon nitride film and blood compatibility, mechanical properties for the films were observed. The chemical bonding configurations, surface topography, contact angle and mechanical properties were characterized by means of X-ray photoelectron spectroscopy (XPS), atomic force microscopy (AFM) and nano-indentation technique and CSEM pin-on-disk tribometer. Blood compatibility of the films was evaluated by platelet adhesion investigation. The results of the platelet adhesion tests shown that the effect of fluorine and nitrogen-doped revealed an intimate relationship between the ratio of polar component and dispersion component of the surface energy and its hemocompatibility. Si-N-O coating can be a great candidate for developing antithrombogenic surfaces in blood contacting materials. The chemical bonding state made an adjustment in microstructured surfaces, once in the totally wettable configuration, may improve the initial contact between platelet and biomedical materials, due to the appropriate ratio of dispersion component and polar component. To resist wear, biomedical components require coatings that are tough and hard, have low friction, and are bio-inert. The study suggests that by Si-N coating the metal surfaces could be a choice to prolong the life of the sliding pair Co-Cr-Mo alloy/UHMWPE implants.
氮化硅薄膜的行为及其与血液相容性和生物力学的关系一直是研究人员感兴趣的课题。通过直流非平衡磁控溅射技术,对不同 N₂ 和 CF₄ 流量下沉积氮化硅薄膜的血液相容性和生物力学性能进行了系统的研究。观察到了薄膜表面性质、氮化硅薄膜的化学结合状态和血液相容性、机械性能的重要作用。采用 X 射线光电子能谱(XPS)、原子力显微镜(AFM)和纳米压痕技术以及 CSEM 销盘摩擦仪对化学结合构型、表面形貌、接触角和机械性能进行了表征。通过血小板黏附实验评价了薄膜的血液相容性。血小板黏附试验结果表明,氟和氮掺杂的效果揭示了表面能的极性成分和色散成分的比例与其血液相容性之间的密切关系。Si-N-O 涂层可以成为开发血液接触材料中抗血栓表面的理想候选材料。化学结合状态在微结构表面上进行了调整,一旦处于完全润湿的状态,由于色散成分和极性成分的适当比例,可能会改善血小板和生物医学材料之间的初始接触。为了抵抗磨损,生物医学组件需要具有韧性和硬度、低摩擦和生物惰性的涂层。研究表明,通过 Si-N 涂层可以选择金属表面来延长 Co-Cr-Mo 合金/UHMWPE 植入物的滑动副的使用寿命。