Literature DB >> 25727071

Fe-Au and Fe-Ag composites as candidates for biodegradable stent materials.

Tao Huang1, Jian Cheng2, Dong Bian1, Yufeng Zheng1,2.   

Abstract

In this study, Fe-Ag and Fe-Au composites were fabricated by powder metallurgy using spark plasma sintering. Their microstructures, mechanical properties, and biocorrosion behavior were investigated by using optical microscopy, X-ray diffraction, environment scanning electronic microscopy, compressive test, electrochemical measurements, and immersion tests. Microstructure characterization indicated that the as-sintered iron-based materials obtained much finer grains than that of as-cast pure iron. Phase analysis showed that the Fe-Ag composites were composed of α-Fe and pure Ag phases, and Fe-Au composites consisted of α-Fe and Au phases. Compressive test showed that the improved mechanical strengths were obtained in as-sintered iron-based materials, among which the Fe-5 wt %Ag exhibited the best mechanical properties. The electrochemical and immersion tests revealed that the addition of Ag and Au could increase the corrosion rate of the iron matrix and change the corrosion mode into more uniform one. Based on the results of cytotoxicity evaluation, it was found that all the experimental material extracts performed no significant toxicity on the L-929 cells and EA. hy-926 cells, whereas a considerable inhibition on the proliferation of vascular smooth muscle cells was observed. The hemocompatibility tests showed that the hemolysis of all the experimental materials was within the range of 5%, which is the criteria value of biomaterials with good hemocomaptibility. The amount of platelet adhered on the surface of as-sintered iron-based materials was lower than that of as-cast pure iron, and the morphology of platelets kept smoothly spherical on the surface of all the experimental materials.
© 2015 Wiley Periodicals, Inc.

Entities:  

Keywords:  Fe-Ag composite; Fe-Au composite; biocompatibility; biodegradable metal; corrosion; in vitro

Mesh:

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Year:  2015        PMID: 25727071     DOI: 10.1002/jbm.b.33389

Source DB:  PubMed          Journal:  J Biomed Mater Res B Appl Biomater        ISSN: 1552-4973            Impact factor:   3.368


  13 in total

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7.  Microstructural, Mechanical and Corrosion Characteristics of Degradable PM Biomaterials Made from Copper-Coated Iron Powders.

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8.  Uniform and accelerated degradation of pure iron patterned by Pt disc arrays.

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Journal:  Sci Rep       Date:  2016-04-01       Impact factor: 4.379

9.  Magnetron Sputtering as a Fabrication Method for a Biodegradable Fe32Mn Alloy.

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