Morrison M L, Buchanan R A, Leon R V, Liu C T, Green B A, Liaw P K, Horton J A
Department of Materials Science and Engineering, The University of Tennessee, 434 Dougherty Engineering Building, Knoxville, Tennessee 37996-2200, USA.
J Biomed Mater Res A. 2005 Sep 1;74(3):430-8. doi: 10.1002/jbm.a.30361.
Bulk metallic glasses (BMGs) represent an emerging class of materials with an amorphous structure and a unique combination of properties. The objectives of this investigation were to define the electrochemical behavior of a specific Zr-based BMG alloy in a physiologically relevant environment and to compare these properties to standard, crystalline biomaterials as well as other Zr-based BMG compositions. Cyclic-anodic-polarization studies were conducted with a Zr52.5Cu17.9Ni14.6Al10.0Ti5.0 (at %) BMG in a phosphate-buffered saline electrolyte with a physiologically relevant oxygen content at 37 degrees C. The results were compared to three common, crystalline biomaterials: CoCrMo, 316L stainless steel, and Ti-6Al-4V. The BMG alloy was found to have a lower corrosion penetration rate (CPR), as compared to the 316L stainless steel, and an equivalent CPR, as compared to the CoCrMo and Ti-6Al-4V alloys. Furthermore, the BMG alloy demonstrated better localized corrosion resistance than the 316L stainless steel. However, the localized corrosion resistance of the BMG alloy was not as high as those of the CoCrMo and Ti-6Al-4V alloys in the tested environment. The excellent electrochemical properties demonstrated by the BMG alloy are combined with a low modulus and unparalleled strength. This unique combination of properties dramatically demonstrates the potential for amorphous alloys as a new generation of biomaterials.
大块金属玻璃(BMG)是一类新兴材料,具有非晶态结构和独特的性能组合。本研究的目的是确定一种特定的锆基BMG合金在生理相关环境中的电化学行为,并将这些性能与标准的晶体生物材料以及其他锆基BMG成分进行比较。采用Zr52.5Cu17.9Ni14.6Al10.0Ti5.0(原子%)BMG在37℃下含生理相关氧含量的磷酸盐缓冲盐电解质中进行循环阳极极化研究。将结果与三种常见的晶体生物材料进行比较:CoCrMo、316L不锈钢和Ti-6Al-4V。结果发现,与316L不锈钢相比,BMG合金具有较低的腐蚀穿透速率(CPR),与CoCrMo和Ti-6Al-4V合金相比,CPR相当。此外,BMG合金比316L不锈钢表现出更好的局部耐腐蚀性。然而,在测试环境中,BMG合金的局部耐腐蚀性不如CoCrMo和Ti-6Al-4V合金。BMG合金所展示的优异电化学性能与低模量和无与伦比的强度相结合。这种独特的性能组合显著地证明了非晶合金作为新一代生物材料的潜力。