Li H F, Zhou F Y, Li L, Zheng Y F
Department of Materials Science and Engineering, College of Engineering, Peking University, Beijing 100871, China.
Center for Biomedical Materials and Engineering, Harbin Engineering University, Harbin 150001, China.
Sci Rep. 2016 Apr 19;6:24414. doi: 10.1038/srep24414.
In the present study, novel MRI compatible zirconium-ruthenium alloys with ultralow magnetic susceptibility were developed for biomedical and therapeutic devices under MRI diagnostics environments. The results demonstrated that alloying with ruthenium into pure zirconium would significantly increase the strength and hardness properties. The corrosion resistance of zirconium-ruthenium alloys increased significantly. High cell viability could be found and healthy cell morphology observed when culturing MG 63 osteoblast-like cells and L-929 fibroblast cells with zirconium-ruthenium alloys, whereas the hemolysis rates of zirconium-ruthenium alloys are <1%, much lower than 5%, the safe value for biomaterials according to ISO 10993-4 standard. Compared with conventional biomedical 316L stainless steel, Co-Cr alloys and Ti-based alloys, the magnetic susceptibilities of the zirconium-ruthenium alloys (1.25 × 10(-6) cm(3)·g(-1)-1.29 × 10(-6) cm(3)·g(-1) for zirconium-ruthenium alloys) are ultralow, about one-third that of Ti-based alloys (Ti-6Al-4V, ~3.5 × 10(-6) cm(3)·g(-1), CP Ti and Ti-6Al-7Nb, ~3.0 × 10(-6) cm(3)·g(-1)), and one-sixth that of Co-Cr alloys (Co-Cr-Mo, ~7.7 × 10(-6) cm(3)·g(-1)). Among the Zr-Ru alloy series, Zr-1Ru demonstrates enhanced mechanical properties, excellent corrosion resistance and cell viability with lowest magnetic susceptibility, and thus is the optimal Zr-Ru alloy system as therapeutic devices under MRI diagnostics environments.
在本研究中,开发了具有超低磁化率的新型MRI兼容锆钌合金,用于MRI诊断环境下的生物医学和治疗设备。结果表明,向纯锆中添加钌会显著提高强度和硬度性能。锆钌合金的耐腐蚀性显著提高。在用锆钌合金培养MG 63成骨样细胞和L-929成纤维细胞时,可发现高细胞活力并观察到健康的细胞形态,而锆钌合金的溶血率<1%,远低于根据ISO 10993-4标准的生物材料安全值5%。与传统生物医学用316L不锈钢、钴铬合金和钛基合金相比,锆钌合金的磁化率超低(锆钌合金为1.25×10(-6) cm(3)·g(-1)-1.29×10(-6) cm(3)·g(-1)),约为钛基合金(Ti-6Al-4V,3.5×10(-6) cm(3)·g(-1),CP Ti和Ti-6Al-7Nb,3.0×10(-6) cm(3)·g(-1))的三分之一,钴铬合金(Co-Cr-Mo,~7.7×10(-6) cm(3)·g(-1))的六分之一。在Zr-Ru合金系列中,Zr-1Ru表现出增强的力学性能、优异的耐腐蚀性和细胞活力,且磁化率最低,因此是MRI诊断环境下作为治疗设备的最佳Zr-Ru合金体系。