TY - JOUR
T1 - Biocompatible Ni-free Zr-based bulk metallic glasses with high-Zr-content
T2 - Compositional optimization for potential biomedical applications
AU - Hua, Nengbin
AU - Huang, Lu
AU - Chen, Wenzhe
AU - He, Wei
AU - Zhang, Tao
N1 - Publisher Copyright:
© 2014 Elsevier B.V. All rights reserved.
PY - 2014/12/1
Y1 - 2014/12/1
N2 - The present study designs and prepares Ni-free Zr60 + xTi2.5Al10Fe12.5 - xCu10Ag5 (at.%, x = 0, 2.5, 5) bulk metallic glasses (BMGs) by copper mold casting for potential biomedical application. The effects of Zr content on the in vitro biocompatibility of the Zr-based BMGs are evaluated by investigating mechanical properties, bio-corrosion behavior, and cellular responses. It is found that increasing the content of Zr is favorable for the mechanical compatibility with a combination of low Young's modulus, large plasticity, and high notch toughness. Electrochemical measurements demonstrate that the Zr-based BMGs are corrosion resistant in a phosphate buffered saline solution. The bio-corrosion resistance of BMGs is improved with the increase in Zr content, which is attributed to the enrichment in Zr and decrease in Al concentration in the surface passive film of alloys. Regular cell responses of mouse MC3T3-E1 cells, including cell adhesion and proliferation, are observed on the Zr-Ti-Al-Fe-Cu-Ag BMGs, which reveals their general biosafety. The high-Zr-based BMGs exhibit a higher cell proliferation activity in comparison with that of pure Zr and Ti-6Al-4V alloy. The effects of Zr content on the in vitro biocompatibility can be used to guide the future design of biocompatible Zr-based BMGs.
AB - The present study designs and prepares Ni-free Zr60 + xTi2.5Al10Fe12.5 - xCu10Ag5 (at.%, x = 0, 2.5, 5) bulk metallic glasses (BMGs) by copper mold casting for potential biomedical application. The effects of Zr content on the in vitro biocompatibility of the Zr-based BMGs are evaluated by investigating mechanical properties, bio-corrosion behavior, and cellular responses. It is found that increasing the content of Zr is favorable for the mechanical compatibility with a combination of low Young's modulus, large plasticity, and high notch toughness. Electrochemical measurements demonstrate that the Zr-based BMGs are corrosion resistant in a phosphate buffered saline solution. The bio-corrosion resistance of BMGs is improved with the increase in Zr content, which is attributed to the enrichment in Zr and decrease in Al concentration in the surface passive film of alloys. Regular cell responses of mouse MC3T3-E1 cells, including cell adhesion and proliferation, are observed on the Zr-Ti-Al-Fe-Cu-Ag BMGs, which reveals their general biosafety. The high-Zr-based BMGs exhibit a higher cell proliferation activity in comparison with that of pure Zr and Ti-6Al-4V alloy. The effects of Zr content on the in vitro biocompatibility can be used to guide the future design of biocompatible Zr-based BMGs.
KW - Bio-corrosion
KW - Bulk metallic glass
KW - Cellular response
KW - Toughness
KW - Zr-based alloy
UR - https://www.scopus.com/pages/publications/84907542787
U2 - 10.1016/j.msec.2014.08.049
DO - 10.1016/j.msec.2014.08.049
M3 - 文章
C2 - 25280721
AN - SCOPUS:84907542787
SN - 0928-4931
VL - 44
SP - 400
EP - 410
JO - Materials Science and Engineering C
JF - Materials Science and Engineering C
ER -