Design strategy for biodegradable Fe-based alloys for medical applications

被引:400
作者
Schinhammer, Michael [1 ]
Haenzi, Anja C. [1 ]
Loeffler, Joerg F. [1 ]
Uggowitzer, Peter J. [1 ]
机构
[1] ETH, Dept Mat, Lab Met Phys & Technol, CH-8093 Zurich, Switzerland
关键词
Iron based alloys; Degradable metals; Biocorrosion; Mechanical properties; IN-VIVO CORROSION; MAGNESIUM; STENT; BIOCOMPATIBILITY; BIOMATERIALS; MANGANESE;
D O I
10.1016/j.actbio.2009.07.039
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The aim of this article is to describe a design strategy for the development of new biodegradable Fe-based alloys offering a performance considered appropriate for temporary implant applications, in terms of both an enhanced degradation rate compared to pure iron, and suitable strength and ductility. The design strategy is based on electrochemical, microstructural and toxicological considerations. The influence of alloying elements on the electrochemical modification of the Fe matrix and the controlled formation of noble intermetallic phases is deployed. Such intermetallic phases are responsible for both an increased degradation rate and enhanced strength. Manganese and palladium have been shown to be suitable alloying additions for this design strategy: Mn lowers the standard electrode potential, while Pd forms noble (Fe,Mn)Pd intermetallics that act as cathodic sites. We discuss the efficiency and the potential of the design approach, and evaluate the resulting characteristics of the new alloys using metal-physical experiments including electrochemical measurements, phase identification analysis and electron microscopy studies. The newly developed Fe-Mn-Pd alloys reveal a degradation resistance that is one order of magnitude lower than observed for pure iron. Additionally, the mechanical performance is shown to be adjustable not only by the choice of alloying elements but also by heat treatment procedures; high strength values >1400 MPa at ductility levels >10% can be achieved. Thus, the new alloys offer an attractive combination of electrochemical and mechanical characteristics considered suitable for biodegradable medical applications. (C) 2009 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:1705 / 1713
页数:9
相关论文
共 30 条
[11]  
KAWASHIMA A, 1981, SCI REP RES TOHOKU A, V29, P276
[12]  
Krauss G., 2005, STEELS PROCESSING ST
[13]   Coronary stents: A materials perspective [J].
Mani, Gopinath ;
Feldman, Marc D. ;
Patel, Devang ;
Agrawal, C. Mauli .
BIOMATERIALS, 2007, 28 (09) :1689-1710
[14]   Control of smooth muscle cell proliferation by ferrous iron [J].
Mueller, PP ;
May, T ;
Perz, A ;
Hauser, H ;
Peuster, M .
BIOMATERIALS, 2006, 27 (10) :2193-2200
[15]   Preparation of SBF with different HCO-3 content and its influence on the composition of biomimetic apatites [J].
Müller, L ;
Müller, FA .
ACTA BIOMATERIALIA, 2006, 2 (02) :181-189
[16]   The evolution of cardiovascular stent materials and surfaces in response to clinical drivers: A review [J].
O'Brien, Barry ;
Carroll, William .
ACTA BIOMATERIALIA, 2009, 5 (04) :945-958
[17]   Long-term biocompatibility of a corrodible peripheral iron stent in the porcine descending aorta [J].
Peuster, Matthias ;
Hesse, Carola ;
Schloo, Tirza ;
Fink, Christoph ;
Beerbaum, Philipp ;
von Schnakenburg, Christian .
BIOMATERIALS, 2006, 27 (28) :4955-4962
[18]  
PREDEL B, 1998, GROUP 4 PHYS CHEM E, V5
[19]  
Schumann H., 1967, Arch. Eisenhiittenwes., V38, P647, DOI [10.1002/srin.196704234, DOI 10.1002/SRIN.196704234]
[20]   Polarization resistance method for determination of instantaneous corrosion rates [J].
Scully, JR .
CORROSION, 2000, 56 (02) :199-218