4.7 Article

Phase-tunable equiatomic and non-equiatomic Ti-Zr-Nb-Ta high-entropy alloys with ultrahigh strength for metallic biomaterials

期刊

JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
卷 117, 期 -, 页码 196-206

出版社

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2021.12.014

关键词

Equiatomic Nb25Ta25Ti25Zr25 HEAs; Ultra-fine grain; Phase-tunable; Mechanical properties; Biocompatibility

资金

  1. National Natural Science Foundation of China [51871077]
  2. Guangdong Basic and Applied Basic Research Foundation [2021A1515012626]
  3. Shenzhen Knowledge Innovation Plan-Fundamental Research (Discipline Distribution) [JCYJ20180507184623297]
  4. Shenzhen Science and Technology Plan-Technology Innovation [KQJSCX20180328165656256]
  5. Development and Reform Commission of Shenzhen Municipality-Shenzhen R&D Center for Al-based Hydrogen Hydrolysis Materials [ZX20190229]
  6. Startup Foundation from Shenzhen
  7. Startup Foundation from Harbin Institute of Technology (Shenzhen)

向作者/读者索取更多资源

The contradiction between the strength and ductility of metallic materials has been a long-term scientific problem. Dual-phase equiatomic and non-equiatomic Ti-Zr-Nb-Ta high-entropy alloys (HEAs) with super-high strength and excellent ductility have been successfully developed. The strength of the equiatomic HEAs is attributed to the ultra-fine grain size, and they have potential applications as advanced biomaterials in the medical field.
The contradiction between the strength and ductility of metallic materials is a major scientific problem that has been researched for a long time. Dual-phase equiatomic and non-equiatomic Ti-Zr-Nb-Ta highentropy alloys (HEAs) with super-high strength and excellent ductility have been successfully developed via mechanical alloying (MA) combined with spark plasma sintering (SPS) technology. This is adjusted by altering the atomic ratios of the different phases. X-ray diffraction (XRD) and transmission electron microscopy (TEM) were performed to confirm the dual-phase microstructure. After the SPS process, the average grain size of the aforementioned equiatomic Ti25Zr25Nb25Ta25 HEAs (134 +/- 50 nm) evaluated by electron back-scattering diffraction (EBSD) is smaller than that of the Ti-Zr-Nb-Ta HEAs (150 mu m), which were fabricated using arc melting. According to the Hall-Petch formula, the grain boundary strengthening contribution in the Ti-Zr-Nb-Ta system is 33-fold higher than those fabricated using the arc-melting process. When the alloy phase comprises the equivalent dual-phase, equiatomic Ti25Zr25Nb25Ta25 HEAs have good comprehensive performance compared to non-equiatomic Ti-Zr-Nb-Ta HEAs prepared using the same process. The yield strength of equiatomic Ti25Zr25Nb25Ta25 HEAs (2212 +/- 38 MPa) is two-fold higher than that of Ti-Zr-Nb-Ta HEAs (1100 +/- 90 MPa) fabricated via arc melting. This can be attributed to the ultra-fine grain size. Notably, the equiatomic Ti25Zr25Nb25Ta25 HEAs possess approximately the same biocompatibility as commercial pure Ti (CP-Ti), indicating that the equiatomic Ti25Zr25Nb25Ta25 HEAs are provided with a possibility as an advanced biomaterial for the applications of the medical field. (C) 2022 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.7
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

暂无数据
暂无数据