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金属生物材料的摩擦腐蚀研究:等离子体氮化和类金刚石碳表面改性的影响。

Tribocorrosion studies of metallic biomaterials: The effect of plasma nitriding and DLC surface modifications.

作者信息

Zhao Guo-Hua, Aune Ragnhild E, Espallargas Nuria

机构信息

KTH Kungliga Tekniska Högskolan, MSE Brinellvägen 23, 10044 Stockholm, Sweden; NTNU Norwegian University of Science and Technology, Department of Materials Science and Engineering, 7491 Trondheim, Norway.

NTNU Norwegian University of Science and Technology, Department of Materials Science and Engineering, 7491 Trondheim, Norway.

出版信息

J Mech Behav Biomed Mater. 2016 Oct;63:100-114. doi: 10.1016/j.jmbbm.2016.06.014. Epub 2016 Jun 17.

Abstract

The medical grade pure titanium, stainless steel and CoCrMo alloy have been utilized as biomaterials for load-bearing orthopedic prosthesis. The conventional surgery metals suffer from a combined effect of wear and corrosion once they are implanted, which may significantly accelerate the material degradation process. In this work, the tribocorrosion performance of the metallic biomaterials with different surface modifications was studied in the simulated body fluid for the purpose of investigating the effect of the surface treatments on the tribocorrosion performance and eventually finding the most suitable implantation materials. The metals were subjected to surface modifications by plasma nitriding in different treatment temperatures or physical vapor deposition (PVD) to produce diamond-like carbon (DLC) coating, respectively. The dry wear and tribocorrosion properties of the samples were evaluated by using a reciprocating ball-on-disc tribometer equipped with an electrochemical cell. Prior to the tribocorrosion tests, their electrochemical behavior was measured by the potentiodynamic polarization in phosphate buffer saline (PBS) solution at room temperature. Both stainless steel and CoCrMo after low temperature nitriding kept their passive nature by forming an expanded austenite phase. The DLC coated samples presented the low anodic corrosion current due to the chemical inertness of the carbon layer. During the tribocorrosion tests at open circuit potential, the untreated and low temperature nitrided samples exhibited significant potential drop towards the cathodic direction, which was a result of the worn out of the passive film. Galvanic coupling was established between the depassivated (worn) area and the still passive (unworn) area, making the materials suffered from wear-accelerated corrosion. The DLC coating performed as a solid lubricant in both dry wear and tribocorrosion tests, and the resulting wear after the tests was almost negligible.

摘要

医用级纯钛、不锈钢和钴铬钼合金已被用作承重骨科假体的生物材料。传统的手术用金属一旦植入体内,就会受到磨损和腐蚀的综合影响,这可能会显著加速材料的降解过程。在这项工作中,研究了不同表面改性的金属生物材料在模拟体液中的摩擦腐蚀性能,目的是研究表面处理对摩擦腐蚀性能的影响,并最终找到最合适的植入材料。分别通过在不同处理温度下进行等离子体氮化或物理气相沉积(PVD)对金属进行表面改性,以制备类金刚石碳(DLC)涂层。使用配备电化学池的往复式球盘摩擦磨损试验机评估样品的干摩擦磨损和摩擦腐蚀性能。在进行摩擦腐蚀试验之前,通过在室温下于磷酸盐缓冲盐水(PBS)溶液中进行动电位极化来测量它们的电化学行为。低温氮化后的不锈钢和钴铬钼合金通过形成扩展奥氏体相保持其钝性。由于碳层的化学惰性,DLC涂层样品呈现出较低的阳极腐蚀电流。在开路电位下的摩擦腐蚀试验期间,未处理和低温氮化的样品向阴极方向表现出明显的电位降,这是钝化膜磨损的结果。在去钝化(磨损)区域和仍处于钝化(未磨损)区域之间建立了电偶耦合,使材料遭受磨损加速腐蚀。DLC涂层在干摩擦磨损和摩擦腐蚀试验中均起到固体润滑剂的作用,试验后的磨损几乎可以忽略不计。

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