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Cathodic electrodeposition of zinc-zinc phosphate-calcium phosphate composite coatings on pure iron for biodegradable implant applications

机译:锌 - 磷酸锌 - 磷酸钙复合涂层纯铁的阴极电沉积,可生物降解植入应用

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摘要

Faster degradation of iron based degradable implants in physiological media, particularly during the initial stages of implantation, poses difficulties in directly using them for clinical applications. The present study aims to deposit a zinc-zinc phosphate-calcium phosphate composite coating on pure iron by cathodic electrodeposition under varying current densities (2 to 5 mA cm(-2)) at 27 degrees C for 30 min to overcome the above mentioned limitation. The composite coating was characterized for the amount of coating deposited, surface morphology, elemental composition, nature of functional groups and phase contents. The corrosion behavior of composite coated pure iron in Hanks' balanced salt solution was determined by potentiodynamic polarization, electrochemical impedance and immersion studies. The bioactivity of the composite coated iron was evaluated by immersing it in simulated body fluid. The changes in the morphological features, elemental composition and nature of functional groups present on the surface layer were used to understand the extent of corrosion attack and mineralization. The findings of the study reveal that cathodic electrodeposition enables the deposition of a uniform, highly crystalline zinc-zinc phosphate-calcium phosphate composite coating on pure iron with a plate-like morphology. X-ray diffraction measurements confirm the presence of zinc, zinc phosphate and calcium phosphate phases. The zinc-zinc phosphate-calcium phosphate composite coated pure iron offered a better corrosion resistance than the uncoated one in Hanks' solution. The composite coating also exhibits good bioactivity in simulated body fluid. The study concludes that deposition of zinc-zinc phosphate-calcium phosphate composite coatings on pure iron will be useful to overcome the existing limitation of the higher rate of corrosion of pure iron during the initial stages of implantation.
机译:在生理介质中的铁基可降解植入物的速度更快地降解,特别是在植入的初始阶段,直接使用它们进行临床应用。本研究旨在通过阴极电沉积在不同电流密度(2至5mAcm(-2))下在27℃下将纯铁磷酸锌 - 磷酸钙复合涂层含锌 - 磷酸钙 - 磷酸钙复合涂层30分钟,以克服上述限制。复合涂层的特征在于沉积,表面形态,元素组成,官能团和相含量的性质的涂层量。通过电压极化,电化学阻抗和浸入研究确定了Hanks平衡盐溶液中复合涂覆的纯铁的腐蚀行为。通过将其浸入模拟体液中来评价复合涂层铁的生物活性。使用表面层上存在的形态学特征,元素组成和性质的变化来了解腐蚀攻击和矿化的程度。该研究的发现表明,阴极电沉积使得能够沉积均匀,高度结晶的磷酸锌 - 磷酸钙复合涂层,纯铁具有板状形态。 X射线衍射测量证实了锌,磷酸锌和磷酸钙相的存在。磷酸锌 - 磷酸锌 - 磷酸钙复合涂层涂层纯铁提供比Hanks溶液中未涂层的耐腐蚀性更好的耐腐蚀性。复合涂层在模拟体液中也表现出良好的生物活性。该研究得出结论,纯铁磷酸锌 - 磷酸钙复合涂料的沉积将有助于克服植入初始阶段纯铁腐蚀率较高速率的局限性。

著录项

  • 来源
    《New Journal of Chemistry》 |2020年第16期|共15页
  • 作者单位

    Univ Madras Dept Analyt Chem Guindy Campus Chennai 600025 Tamil Nadu India;

    Univ Madras Dept Analyt Chem Guindy Campus Chennai 600025 Tamil Nadu India;

    Ulsan Natl Inst Sci &

    Technol UNIST Ulsan South Korea;

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

  • 入库时间 2022-08-19 17:34:41

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