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An investigation of passivity and breakdown of amorphous chromium-bromine thin films for surface modification of metallic biomaterials.

机译:用于金属生物材料表面改性的无定形溴溴薄膜的钝化和击穿研究。

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摘要

The objectives of this investigation of amorphous Cr-B thin films as prospective coatings for biomaterials applications were to (i) produce and characterize an amorphous Cr-B thin film coating by magnetron sputtering, (ii) evaluate its corrosion resistance in physiologically relevant electrolytes, and (iii) propose a mechanism for the formation/dissolution of the passive film formed on amorphous Cr-B in chloride-containing near-neutral salt electrolytes. Dense (zone T) amorphous Cr75B25 thin films produced by DC magnetron sputtering were found to be better corrosion barriers than nanoczystalline or porous (zone 1) amorphous Cr75B25 thin films. The growth morphology and microstructure were a function of the sputtering pressure and substrate temperature, in agreement with the structure zone model of Thornton. The passivity/loss of passivity of amorphous Cr 75B25 in near-neutral salt solutions was explained using a modified bipolar layer model. The chromate ions identified by X-Ray Photoelectron Spectroscopy (XPS) in the outer layer of the passive film were found to play a determinant role in the passive behaviour of amorphous Cr75B 25 thin films in salt solutions. In near-neutral salt solutions of pH = 5 to 7, a decrease in pH combined with an increase in chloride concentration resulted in less dissolution of the Cr75B25 thin films. The apparent breakdown potential at 240 mV (SCE) obtained by Cyclic Potentiodynamic Anodic Polarization (CPAP) was associated with oxidation of species within the passive film, but not to dissolution leading to immediate loss of passivity. Pit Propagation Rate (PPR) testing evaluated the stable pitting potential to be between 600 and 650 mV. Amorphous Cr75B25 thin films ranked the best among other Cr-based materials such as 316L stainless steel, CrB2 and Cr investigated in this study for general corrosion behaviour in NaCl and Hanks solutions by CPAP testing. In terms of corrosion resistance, amorphous Cr75B25 thin films were recognized as a promising material for surface modification of biomaterials.
机译:这项针对无定形Cr-B薄膜作为生物材料应用前景涂层的研究的目的是(i)通过磁控溅射生产和表征无定形Cr-B薄膜涂层,(ii)评估其在生理相关电解质中的耐腐蚀性, (iii)提出了形成/溶解在无定形Cr-B上形成的钝化膜在含氯的近中性盐电解质中的机理。发现通过DC磁控管溅射生产的致密(T区)非晶Cr75B25薄膜比纳米晶或多孔(1区)非晶Cr75B25薄膜具有更好的腐蚀阻挡层。生长形貌和微观结构是溅射压力和衬底温度的函数,与桑顿的结构区模型一致。使用改进的双极性层模型解释了在中性盐溶液中非晶态Cr 75B25的钝化度的钝化度/钝化度。发现通过X射线光电子能谱(XPS)在钝化膜外层中识别出的铬离子在盐溶液中对非晶Cr75B 25薄膜的钝化行为起决定性作用。在pH = 5到7的近中性盐溶液中,pH值的降低与氯化物浓度的增加相结合,会导致Cr75B25薄膜的溶解减少。通过循环电位动力学阳极极化(CPAP)获得的240 mV(SCE)的表观击穿电位与钝化膜内物质的氧化有关,但与溶解无关,不会立即导致钝化损失。坑传播速率(PPR)测试评估了稳定的点蚀电位在600至650 mV之间。通过CPAP测试,非晶态Cr75B25薄膜在316L不锈钢,CrB2和Cr等其他基于Cr的材料中,在NaCl和Hanks溶液中的一般腐蚀行为方面,在本研究中进行了研究,其性能最佳。在耐腐蚀性方面,非晶态的Cr75B25薄膜被公认为是生物材料表面改性的有前途的材料。

著录项

  • 作者

    Cormier, Lyne Mercedes.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 362 p.
  • 总页数 362
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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