Ti6Al4V表面生物功能纯Mg薄膜制备及性能研究
作者简介 于晓明,男,1981年生,博士
收稿日期: 2017-07-10
网络出版日期: 2017-11-09
基金资助
国家自然科学基金项目Nos.51631009、81500897和81400528,以及国家重点研发计划项目No.2016YFC1101804
Preparation and Properties of Biological Functional Magnesium Coating on Ti6Al4V Substrate
Received date: 2017-07-10
Online published: 2017-11-09
Supported by
Supported by National Natural Science Foundation of China (Nos.51631009, 81500897 and 81400528) and National Key Research and Development Program of China (No.2016YFC1101804)
于晓明 , 谭丽丽 , 刘宗元 , 杨柯 , 朱忠林 , 李扬德 . Ti6Al4V表面生物功能纯Mg薄膜制备及性能研究[J]. 金属学报, 2018 , 54(6) : 943 -949 . DOI: 10.11900/0412.1961.2017.00285
Currently, metallic biomaterials used in orthopedics are normally bioinert which is hard to integrate with the bone tissue inducing aseptic loosening and easy to get infection, which is the main reason of implantation failure. Mg base metals are considered to be a new generation of revolutionary metallic biomaterials due to its similar density and mechanical properties with natural bone, good biocompatibility, degradability in the body as well as the biological functional ability to promote new bone tissue formation. In addition, the degradation of Mg may increase the local pH which can inhibit the growth of bacteria. In this work, pure Mg coating was deposited on Ti6Al4V substrate by arc ion plating. The effects of different working pressures on the surface quality and properties of Mg coating were investigated. The degradation, antibacterial and biosafety properties were studyied. The results showed that the pure Mg coating can be deposited on the surface of Ti6Al4V substrate and the coating was uniform and smooth. The immersion test in vitro showed that the degradation was very fast because of galvanic corrosion, and the whole process was finished in about one week. The results of antimicrobial experiments showed that the Mg coating can kill staphylococcus aureus and showed good antibacterial function. The results of cytotoxicity test showed that Mg coating promoted rabbit bone marrow mesenchymal stem cells (rBMSCs) growth and proliferation.
Key words: Ti alloy; pure Mg coating; bioproperty
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