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首页> 外文期刊>Materials science & engineering >In vitro degradation and biocompatibility of Fe-Pd and Fe-Pt composites fabricated by spark plasma sintering
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In vitro degradation and biocompatibility of Fe-Pd and Fe-Pt composites fabricated by spark plasma sintering

机译:火花等离子体烧结制备的Fe-Pd和Fe-Pt复合材料的体外降解及生物相容性

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摘要

In order to obtain biodegradable Fe-based materials with similar mechanical properties as 316L stainless steel and faster degradation rate than pure iron, Fe-5 wt.%Pd and Fe-5 wt.%Pt composites were prepared by spark plasma sintering with powders of pure Fe and Pd/Pt, respectively. The grain size of Fe-5 wt.%Pd and Fe-5 wt%Pt composites was much smaller than that of as-cast pure iron. The metallic elements Pd and Pt were uniformly distributed in the matrix and the mechanical properties of these materials were improved. Uniform corrosion of Fe-Pd and Fe-Pt composites was observed in both electrochemical tests and immersion tests, and the degradation rates of Fe-Pd and Fe-Pt composites were much faster than that of pure iron. It was found that viabilities of mouse fibro-blast L-929 cells and human umbilical vein endothelial cells (ECV304) cultured in extraction mediums of Fe-Pd and Fe-Pt composites were close to that of pure iron. After 4 days' culture, the viabilities of L-929 and ECV304 cells in extraction medium of experimental materials were about 80%. The result of direct contact cytotoxicity also indicated that experimental materials exhibited no inhibition on vascular endothelial process. Meanwhile, iron ions released from experimental materials could inhibit proliferation of vascular smooth muscle cells (VSMC), which may be beneficial for hindering vascular restenosis. Furthermore, compared with that of as-cast pure iron, the hemolysis rates of Fe-Pd and Fe-Pt composites were slightly higher, but still within the range of 5%, which is the criteria for good blood compatibility. The numbers of platelet adhered on the surface of Fe-Pd and Fe-Pt composites were lower than that of pure iron, and the morphology of platelets kept spherical. To sum up, the Fe-5wt.%Pd and Fe-5wt.%Pt composites exhibited good mechanical properties and degradation behavior, closely approaching the requirements for biodegradable metallic stents.
机译:为了获得具有与316L不锈钢相似的机械性能和比纯铁更快的降解速率的可生物降解的铁基材料,通过火花等离子烧结粉末制备Fe-5 wt。%Pd和Fe-5 wt。%Pt复合材料纯铁和钯/铂。 Fe-5 wt。%Pd和Fe-5 wt%Pt复合材料的晶粒尺寸比铸态纯铁小得多。金属元素Pd和Pt均匀分布在基体中,提高了这些材料的机械性能。在电化学测试和浸入测试中均观察到Fe-Pd和Fe-Pt复合材料的均匀腐蚀,并且Fe-Pd和Fe-Pt复合材料的降解速率比纯铁快得多。研究发现,在Fe-Pd和Fe-Pt复合材料的提取培养基中培养的小鼠成纤维细胞L-929细胞和人脐静脉内皮细胞(ECV304)的活性接近纯铁。培养4天后,在实验材料的提取培养基中L-929和ECV304细胞的活力约为80%。直接接触细胞毒性的结果还表明,实验材料对血管内皮过程没有抑制作用。同时,从实验材料中释放出的铁离子可以抑制血管平滑肌细胞(VSMC)的增殖,可能有助于阻止血管再狭窄。此外,与铸态纯铁相比,Fe-Pd和Fe-Pt复合材料的溶血率略高,但仍在5%的范围内,这是血液相容性良好的标准。 Fe-Pd和Fe-Pt复合材料表面粘附的血小板数量少于纯铁,并且血小板的形态保持球形。综上所述,Fe-5wt。%Pd和Fe-5wt。%Pt复合材料表现出良好的机械性能和降解性能,非常接近可生物降解金属支架的要求。

著录项

  • 来源
    《Materials science & engineering》 |2014年第2期|43-53|共11页
  • 作者

    T. Huang; J. Cheng; Y.F. Zheng;

  • 作者单位

    State Key Laboratory for Turbulence and Complex System, College of Engineering, Peking University, Beijing 100871, China,Department of Materials Science and Engineering, College of Engineering, Peking University, Beijing 100871, China;

    Center for Biomedical Materials and Tissue Engineering, Academy for Advanced Interdisciplinary Studies, Peking University, Beijing 100871, China;

    State Key Laboratory for Turbulence and Complex System, College of Engineering, Peking University, Beijing 100871, China,Department of Materials Science and Engineering, College of Engineering, Peking University, Beijing 100871, China,Center for Biomedical Materials and Tissue Engineering, Academy for Advanced Interdisciplinary Studies, Peking University, Beijing 100871, China;

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

    Biodegradable metal; Fe-Pt composite; Fe-Pd composite; Corrosion; Biocompatibility;

    机译:可生物降解的金属;Fe-Pt复合材料;铁钯复合材料腐蚀;生物相容性;

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