3D-cubic interconnected porous Mg-based scaffolds for bone repair

材料科学 多孔性 生物相容性 松质骨 脚手架 复合材料 模数 组织工程 生物医学工程 化学工程 外科 冶金 医学 工程类
作者
Qiangsheng Dong,Yang Li,Huiqin Jiang,Xingxing Zhou,Huan Liu,Mengmeng Lu,Chenglin Chu,Feng Xue,Jing Bai
出处
期刊:Journal of Magnesium and Alloys [Elsevier BV]
卷期号:9 (4): 1329-1338 被引量:53
标识
DOI:10.1016/j.jma.2020.05.022
摘要

Mg-based porous materials, as potential bone tissue engineering scaffolds, are considered an attractive strategy for bone repair owing to favorable biodegradability, good biocompatibility and suitable mechanical properties. In this work, 3D-cubic interconnected porous Mg–xZn–0.3Ca (x = 0,3,6) scaffolds were prepared to obtain desirable pore structures with a mean porosity up to 73% and main pore size of 400–500 µm, which pore structures were close to the human cancellous bone. The structure–property relationships in the present scaffolds were analyzed by experiments and theoretical models of generalized method of cells (GMC). Mg–xZn–0.3Ca scaffolds exhibited good compression properties with a maximum above 5 MPa in yield strength and about 0.4 GPa in elastic modulus. This was attributed to not only the alloy strengthening but also the large minimum solid area. On the other hand, the scaffolds showed undesirable and relatively serious degradation behavior in Hank's solution, resulting from Zn addition in Mg-based scaffolds and the high surface area ratio in the pore structure. Therefore, surface modifications are worth studying for controlled degradation in the future. In conclusion, this research would explore a novel attempt to introduce 3D-cubic pore structure for Mg-based scaffolds, and provide new insights into the preparations of Mg-based scaffolds with good service performances for bone repair.

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