Microstructure, Mechanical Properties and Corrosion Behavior of Porous Mg-6 wt.% Zn Scaffolds for Bone Tissue Engineering

被引:0
作者
Yang Yan
Yijun Kang
Ding Li
Kun Yu
Tao Xiao
Qiyuan Wang
Youwen Deng
Hongjie Fang
Dayue Jiang
Yu Zhang
机构
[1] Central South University,School of Materials Science and Engineering
[2] Central South University,The Second Xiangya Hospital
[3] Yantai Nanshan University,Department of Materials Science and Engineering
来源
Journal of Materials Engineering and Performance | 2018年 / 27卷
关键词
biomaterial; corrosion behavior; magnesium alloy scaffolds; mechanical properties; microstructure; pore size; porosity;
D O I
暂无
中图分类号
学科分类号
摘要
Porous Mg-based scaffolds have been extensively researched as biodegradable implants due to their attractive biological and excellent mechanical properties. In this study, porous Mg-6 wt.% Zn scaffolds were prepared by powder metallurgy using ammonium bicarbonate particles as space-holder particles. The effects of space-holder particle content on the microstructure, mechanical properties and corrosion resistance of the Mg-6 wt.% Zn scaffolds were studied. The mean porosity and pore size of the open-cellular scaffolds were within the range 6.7-52.2% and 32.3-384.2 µm, respectively. Slight oxidation was observed at the grain boundaries and on the pore walls. The Mg-6 wt.% Zn scaffolds were shown to possess mechanical properties comparable with those of natural bone and had variable in vitro degradation rates. Increased content of space-holder particles negatively affected the mechanical behavior and corrosion resistance of the Mg-6 wt.% Zn scaffolds, especially when higher than 20%. These results suggest that porous Mg-6 wt.% Zn scaffolds are promising materials for application in bone tissue engineering.
引用
收藏
页码:970 / 984
页数:14
相关论文
共 246 条
  • [41] Xin YC(2014)Biodegradable Magnesium Scaffolds: Part 1: Appropriate Inflammatory Response Mater. Des. 63 89-137
  • [42] Hu T(2015)Evaluation of Porosity in Lotus-Type Porous Magnesium Fabricated by Metal/Gas Eutectic Unidirectional Solidification Mater. Des. 88 132-302
  • [43] Chu PK(2007)Synthesis, Microstructure and Mechanical Properties of Porous Mg-Zn Scaffolds Adv. Eng. Mater. 9 298-139
  • [44] Krawiec H(1997)Formation of MgO and Mg–Zn Intermetallics in an Mg-Based Composite by In Situ Reactions Ceram. Int. 23 135-3302
  • [45] Stanek S(2003)Interdiffusion and Impurity Diffusion in Polycrystalline Mg Solid Solution with Al or Zn Biomaterials 24 3293-889
  • [46] Vignal V(2001)Role of Kirkendall Effect in Diffusion Processes in Solids Biomaterials 22 883-3431
  • [47] Lelito J(2006)Evaluating the Stress Corrosion Cracking Susceptibility of Mg-Al-Zn Alloy in Modified-Simulated Body Fluid for Orthopaedic Implant Application Biomaterials 27 3413-186
  • [48] Suchy JS(2017)Transition of Interface Oxide Layer from Porous Mg(OH) J. Alloys Compd. 724 176-68
  • [49] Koleini S(1953), to Dense MgO Induced by Polyaniline and Corrosion Resistance of Mg Alloy Therefrom J. Am. Ceram. Soc. 36 65-1608
  • [50] Idris MH(2011)Improving the Mechanical Properties of Magnesium and a Magnesium Alloy Through Severe Plastic Deformation Mater. Sci. Eng. B 176 1600-858