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首页> 外文期刊>Materials science & engineering >Surface characterization and corrosion behavior of calcium phosphate-base composite layer on titanium and its alloys via plasma electrolytic oxidation: A review paper
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Surface characterization and corrosion behavior of calcium phosphate-base composite layer on titanium and its alloys via plasma electrolytic oxidation: A review paper

机译:等离子电解氧化钛及其合金上磷酸钙基复合层的表面表征和腐蚀行为

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摘要

In recent years, calcium phosphate-base composites, such as hydroxyapatite (HA) and carbonate apatite (CA) have been considered desirable and biocompatible coating layers in clinical and biomedical applications such as implants because of the high resistance of the composites. This review focuses on the effects of voltage, time and electrolytes on a calcium phosphate-base composite layer in case of pure titanium and other biomedical grade titanium alloys via the plasma electrolytic oxidation (PEO) method. Remarkably, these parameters changed the structure, morphology, pH, thickness and crystallinity of the obtained coating for various engineering and biomedical applications. Hence, the structured layer caused improvement of the biocompatibility, corrosion resistance and assignment of extra benefits for Osseo integration. The fabricated layer with a thickness range of 10 to 20 μm was evaluated for physical, chemical, mechanical and tribological characteristics via XRD, FESEM, EDS, EIS and corrosion analysis respectively, to determine the effects of the applied parameters and various electrolytes on morphology and phase transition. Moreover, it was observed that during PEO, the concentration of calcium, phosphor and titanium shifts upward, which leads to an enhanced bioactivity by altering the thickness. The results confirm that the crystallinity, thickness and contents of composite layer can be changed by applying thermal treatments. The corrosion behavior was investigated via the potentiodynamic polarization test in a body-simulated environment Here, the optimum corrosion resistance was obtained for the coating process condition at 500 V for 15 min in Ringer solution. This review has been summarized, aiming at the further development of PEO by producing more adequate titanium-base implants along with desired mechanical and biomedical features.
机译:近年来,由于磷酸钙基复合材料,例如羟基磷灰石(HA)和碳酸盐磷灰石(CA),在临床和生物医学应用(如植入物)中具有很高的抵抗力,因此被认为是理想的生物相容性涂层。在纯钛和其他生物医学级钛合金通过等离子电解氧化(PEO)方法的情况下,本综述着重于电压,时间和电解质对磷酸钙基复合层的影响。明显地,这些参数改变了所获得的用于各种工程和生物医学应用的涂层的结构,形态,pH,厚度和结晶度。因此,结构化层引起了生物相容性,耐腐蚀性的改善,并赋予了Osseo集成额外的好处。分别通过XRD,FESEM,EDS,EIS和腐蚀分析评估厚度为10至20μm的已加工层的物理,化学,机械和摩擦学特性,以确定所施加的参数和各种电解质对形貌和强度的影响。相变。而且,观察到在PEO期间,钙,磷和钛的浓度向上移动,这通过改变厚度导致增强的生物活性。结果证实,通过施加热处理可以改变复合层的结晶度,厚度和含量。通过在人体模拟环境中的电位动力学极化试验研究了腐蚀行为。这里,在林格溶液中,在500 V下进行15分钟的涂覆工艺条件下,获得了最佳的耐腐蚀性。总结了该综述,旨在通过生产更合适的钛基植入物以及所需的机械和生物医学特征来进一步开发PEO。

著录项

  • 来源
    《Materials science & engineering》 |2015年第12期|397-413|共17页
  • 作者单位

    Center of Advanced Manufacturing and Material Processing Department of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia,Department of Mechanical Engineering Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Center of Advanced Manufacturing and Material Processing Department of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia;

    Center of Advanced Manufacturing and Material Processing Department of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia,Department of Mechanical Engineering Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia,Department of Research and Development, Azarin Kar Ind. Co., Industrial Zone 1, 7635168361 Kerman, Iran;

    Center of Advanced Manufacturing and Material Processing Department of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia,Department of Mechanical Engineering Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    PEO; Calcium phosphate; Crystallinity; Corrosion resistance; Apatite coating;

    机译:PEO;磷酸钙;结晶度耐腐蚀性能;磷灰石涂层;

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