金属热处理 ›› 2022, Vol. 47 ›› Issue (4): 213-218.DOI: 10.13251/j.issn.0254-6051.2022.04.037

• 表面工程 • 上一篇    下一篇

Mg-4.0Zn-2.0Sr-0.4Ca合金复合涂层的耐腐蚀性能

陈志杰1,2,3, 崔彤1,2,3   

  1. 1.东北大学 材料科学与工程学院, 辽宁 沈阳 110819;
    2.东北大学 各向异性教育部重点实验室, 辽宁 沈阳 110819;
    3.东北大学 辽宁省激光应用技术及设备重点实验室, 辽宁 沈阳 110819
  • 收稿日期:2021-12-18 修回日期:2022-01-18 出版日期:2022-04-25 发布日期:2022-05-19
  • 通讯作者: 崔 彤,副教授,E-mail:ct114928@163.com
  • 作者简介:陈志杰(1996—),男,硕士研究生,主要研究方向为生物镁合金的表面改性,E-mail:chenzhijie2206@163.com。

Corrosion resistance of Mg-4.0Zn-2.0Sr-0.4Ca alloy composite coating

Chen Zhijie1,2,3, Cui Tong1,2,3   

  1. 1. School of Materials Science and Engineering, Northeastern University, Shenyang Liaoning 110819, China;
    2. Key Laboratory of Anisotropy Ministry of Education, Northeastern University, Shenyang Liaoning 110819, China;
    3. Key Laboratory of Laser Application Technology and Equipment of Liaoning Province, Northeastern University, Shenyang Liaoning 110819, China
  • Received:2021-12-18 Revised:2022-01-18 Online:2022-04-25 Published:2022-05-19

摘要: 通过环保型阳极氧化工艺及聚合沉积技术在生物材料Mg-4.0Zn-2.0Sr-0.4Ca合金表面逐层制备阳极氧化膜、SiO2溶胶凝胶、聚多巴胺(PDA)和壳聚糖(CS)复合涂层。采用扫描电镜(SEM)、X射线衍射仪(XRD)观察涂层形貌并确定相组成,采用电化学测试、SBF浸泡试验比较涂层对合金耐蚀性能的影响。结果表明,制备的复合涂层致密完整无缺陷。在SBF溶液中,复合涂层随腐蚀时间的延长逐渐产生裂纹并破碎,产生较小的腐蚀坑,腐蚀在一定程度上被控制在表面,而无涂层Mg-4.0Zn-2.0Sr-0.4Ca合金在SBF溶液中的腐蚀以点蚀和局部腐蚀为主,且腐蚀程度随腐蚀时间的延长而加剧。复合涂层在SBF溶液中的腐蚀电流密度、腐蚀电位和平均腐蚀速率分别为5.7039 μA/cm2、-1.4203 V(vs SCE)和0.163 g/(m2·h),均优于无涂层镁合金,且平均腐蚀速率降幅达50%以上,说明制备的复合涂层可显著提高Mg-4.0Zn-2.0Sr-0.4Ca合金的耐腐蚀性能。

关键词: Mg-4.0Zn-2.0Sr-0.4Ca合金, 表面改性, 耐腐蚀性能, 体外浸泡

Abstract: Through environmentally friendly anodizing process and polymer deposition technology, a composite coating of anodic oxide film, SiO2 sol-gel, polydopamine (PDA) and chitosan (CS) were prepared layer by layer on the surface of Mg-4.0Zn-2.0Sr-0.4Ca alloy. The morphology of the coating was observed by using scanning electron microscope (SEM), the phase composition was determined by using X-ray diffractometer (XRD), and the corrosion resistance was tested by means of electrochemical testing and in SBF immersion. The results show that the composite coating is compact and complete without any defects. In the SBF solution, the composite coating gradually cracks and breaks with the prolongation of corrosion time, resulting in smaller corrosion pits, which shows the corrosion is controlled on the surface at a certain degree. However, the corrosion of uncoated Mg-4.0Zn-2.0Sr-0.4Ca alloy is mainly corrosion pits and local corrosion, and the corrosion intensifies with the prolongation of corrosion time. In addition, the corrosion current density, corrosion potential and average corrosion rate of the composite coating in SBF solution are 5.7039 μA/cm2, -1.4203 V(vs SCE) and 0.163 g/(m2·h), which is better than that of the uncoated Mg-4.0Zn-2.0Sr-0.4Ca alloy, especially the average corrosion rate drops by more than 50%, which indicates that the prepared composite coating can significantly improve the corrosion resistance of the Mg-4.0Zn-2.0Sr-0.4Ca alloy.

Key words: Mg-4.0Zn-2.0Sr-0.4Ca alloy, surface modification, corrosion resistance, in vitro immersion

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