Stainless steel surface biofunctionalization with PMMA-bioglass coatings: compositional, electrochemical corrosion studies and microbiological assay

被引:0
作者
L. Floroian
C. Samoila
M. Badea
D. Munteanu
C. Ristoscu
F. Sima
I. Negut
M. C. Chifiriuc
I. N. Mihailescu
机构
[1] Transilvania University of Brasov,Faculty of Electrical Engineering and Computer Science
[2] Transilvania University of Brasov,Faculty of Materials Science and Engineering
[3] Transilvania University of Brasov,Faculty of Medicine
[4] National Institute for Laser,Faculty of Physics
[5] Plasma and Radiation Physics,Department of Microbiology, Faculty of Biology
[6] University of Bucharest,undefined
[7] University of Bucharest,undefined
来源
Journal of Materials Science: Materials in Medicine | 2015年 / 26卷
关键词
PMMA; Simulated Body Fluid; Charge Transfer Resistance; Bioactive Glass; Corrosion Current Density;
D O I
暂无
中图分类号
学科分类号
摘要
A solution is proposed to surpass the inconvenience caused by the corrosion of stainless steel implants in human body fluids by protection with thin films of bioactive glasses or with composite polymer-bioactive glass nanostructures. Our option was to apply thin film deposition by matrix-assisted pulsed laser evaporation (MAPLE) which, to the difference to other laser or plasma techniques insures the protection of a more delicate material (a polymer in our case) against degradation or irreversible damage. The coatings composition, modification and corrosion resistance were investigated by FTIR and electrochemical techniques, under conditions which simulate their biological interaction with the human body. Mechanical testing demonstrates the adhesion, durability and resistance to fracture of the coatings. The coatings biocompatibility was assessed by in vitro studies and by flow cytometry. Our results support the unrestricted usage of coated stainless steel as a cheap alternative for human implants manufacture. They will be more accessible for lower prices in comparison with the majority present day fabrication of implants using Ti or Ti alloys.
引用
收藏
相关论文
共 162 条
[1]  
Marciniak J(1997)Perspectives of employing of the metallic biomaterials in the reconstruction surgery Eng Biomater 1 12-20
[2]  
Zhou YL(2005)Corrosion resistance and biocompatibility of Ti–Ta alloys for biomedical applications Mater Sci Eng A 398 28-36
[3]  
Niinomi M(2012)Corrosion resistance and biocompatibility of Ni-free Zr-based bulk metallic glass for biomedical applications Intermetallics 30 139-143
[4]  
Akahori T(2013)The effects on bone cells of metal ions released from orthopaedic implants. A review Clin Cases Miner Bone Metab 10 34-40
[5]  
Fukui H(2000)Corrosion behaviour of porous titanium–graphite composites designed for surgical implants Corros Sci 42 481-503
[6]  
Toda H(2011)Numerical simulations study of the localized corrosion resistance of AISI 316L stainless steel and pure titanium in a simulated body fluid environment Corros Sci 53 3309-3314
[7]  
Huang HH(2009)In situ impedance spectroscopy study of the electrochemical corrosion of Ti and Ti–6Al–4V in simulated body fluid at 25°C and 37°C Corros Sci 51 2473-2482
[8]  
Sun YS(2008)Electrochemical behavior of Ti–Mo alloys applied as biomaterial Corros Sci 50 938-945
[9]  
Wu CP(2011)Wear and corrosion behaviour of Ti–13Nb–13Zr and Ti–6Al–4V alloys in simulated physiological solution Corros Sci 53 796-808
[10]  
Liu CF(2012)Surface analysis and corrosion resistance of a new titanium base alloy in simulated body fluids Corros Sci 65 431-440