Wang Kun, Xiang Hongping, Xu Lin, Feng Aihan, Qu Shoujiang, Wang Hao, Chen Daolun
Shanghai Key Laboratory of D&A for Metal-Functional Materials, School of Materials Science & Engineering, Tongji University, Shanghai 201804, China.
Biomaterials R&D Center, Zhuhai Institute of Advanced Technology, Chinese Academy of Sciences, Zhuhai 519000, China.
Materials (Basel). 2024 Jan 11;17(2):358. doi: 10.3390/ma17020358.
The crystal structures, stability, mechanical properties and electronic structures of Nb-free and Nb-doped Ti-Al intermetallic compounds were investigated via first-principles calculations. Seven components and eleven crystal configurations were considered based on the phase diagram. The calculated results demonstrate that hP8-TiAl, tP4-TiAl, tP32-TiAl, tI24-TiAl, tI16-TiAl, tI24-TiAl, and tI32-TiAl are the most stable phases. Mechanical properties were estimated with the calculated elastic constants, as well as the bulk modulus, shear modulus, Young's modulus, Poisson's ratio and Pugh's ratio following the Voigt-Reuss-Hill scheme. As the Al content increases, the mechanical strength increases but the ductility decreases in the Ti-Al compounds. This results from the enhanced covalent bond formed by the continuously enhanced Al- hybrid orbitals and Ti-3 orbitals. Nb doping (~5 at.% in this study) keeps the thermodynamical and mechanical stability for the Ti-Al compounds, which exhibit slightly higher bulk modulus and better ductility. This is attributed to the fact that the Nb 4 orbitals locate near the Fermi level and interact with the Ti-3 and Al-3 orbitals, improving the metallic bonds based on the electronic structures.
通过第一性原理计算研究了无铌和掺铌Ti-Al金属间化合物的晶体结构、稳定性、力学性能和电子结构。基于相图考虑了七种组分和十一种晶体构型。计算结果表明,hP8-TiAl、tP4-TiAl、tP32-TiAl、tI24-TiAl、tI16-TiAl、tI24-TiAl和tI32-TiAl是最稳定的相。根据计算得到的弹性常数以及按照Voigt-Reuss-Hill方案计算的体积模量、剪切模量、杨氏模量、泊松比和普格比来估算力学性能。在Ti-Al化合物中,随着Al含量的增加,机械强度增加但延展性降低。这是由于Al杂化轨道和Ti-3轨道不断增强形成的共价键增强所致。铌掺杂(本研究中约为5 at.%)保持了Ti-Al化合物 的热力学和力学稳定性,其表现出略高的体积模量和更好的延展性。这归因于Nb 4轨道位于费米能级附近并与Ti-3和Al-3轨道相互作用,基于电子结构改善了金属键。