Cao Peiyu, Ni Xiaodong, Tian Fuyang, Varga Lajos K, Vitos Levente
Department of physics, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
J Phys Condens Matter. 2015 Feb 25;27(7):075401. doi: 10.1088/0953-8984/27/7/075401. Epub 2015 Feb 2.
The Al(x)MoNbTiV (x = 0-1.5) high-entropy alloys (HEAs) adopt a single solid-solution phase, having the body centered cubic (bcc) crystal structure. Here we employ the ab initio exact muffin-tin orbitals method in combination with the coherent potential approximation to investigate the equilibrium volume, elastic constants, and polycrystalline elastic moduli of Al(x)MoNbTiV HEAs. A comparison between the ab initio and experimental equilibrium volumes demonstrates the validity and accuracy of the present approach. Our results indicate that Al addition decreases the thermodynamic stability of the bcc structure with respect to face-centered cubic and hexagonal close packed lattices. For the elastically isotropic Al(0.4)MoNbTiV HEAs, the valence electron concentration (VEC) is about 4.82, which is slightly different from VEC ∼ 4.72 obtained for the isotropic Gum metals and refractory--HEAs.
Al(x)MoNbTiV(x = 0 - 1.5)高熵合金(HEAs)呈现单一固溶体相,具有体心立方(bcc)晶体结构。在此,我们采用从头算精确 muffin - tin 轨道方法并结合相干势近似来研究 Al(x)MoNbTiV 高熵合金的平衡体积、弹性常数和多晶弹性模量。从头算结果与实验平衡体积之间的比较证明了本方法的有效性和准确性。我们的结果表明,相对于面心立方和六方密堆积晶格,Al 的添加降低了 bcc 结构的热力学稳定性。对于各向同性的 Al(0.4)MoNbTiV 高熵合金,价电子浓度(VEC)约为 4.82,这与各向同性的 Gum 金属和难熔高熵合金所得到的 VEC ∼ 4.72 略有不同。