TY - JOUR
T1 - Effect of anti-site point defects on the mechanical and thermodynamic properties of MgZn2, MgCu2 Laves phases
T2 - A first-principle study
AU - Wang, Shuo
AU - Zhao, Yuhong
AU - Hou, Hua
AU - Wen, Zhiqin
AU - Zhang, Peilin
AU - Liang, Jianquan
N1 - Publisher Copyright:
© 2018
PY - 2018/7
Y1 - 2018/7
N2 - A theoretical investigation on the effect of anti-site point defects on mechanical and thermodynamic properties of MgZn2 and MgCu2 based on the first-principles calculations has been implemented. The results show that Mg anti-site defect on Zn or Cu site plays a reinforcing role, while exhibiting a more brittle behavior. However, the defect phase of Cu anti-sites on Mg sublattice shows a ductile tendency. The temperature-dependent thermodynamic properties are also predicted along with Debye-Grüneisen model including Debye temperature, thermal expansion coefficient and vibrational heat capacity as well as vibrational entropy. Taking into account the contribution of the lattice vibration and thermal electronic excitations, the Helmholtz free energy F can be calculated, suggests that anti-site defects caused by the occupancy of Mg at the Zn or Cu site are thermodynamically unstable compared to the defect-free phases. In addition, the total amount of charge transfer, the overall and the local difference charge densities are further discussed to analyze the mechanism of mechanical properties.
AB - A theoretical investigation on the effect of anti-site point defects on mechanical and thermodynamic properties of MgZn2 and MgCu2 based on the first-principles calculations has been implemented. The results show that Mg anti-site defect on Zn or Cu site plays a reinforcing role, while exhibiting a more brittle behavior. However, the defect phase of Cu anti-sites on Mg sublattice shows a ductile tendency. The temperature-dependent thermodynamic properties are also predicted along with Debye-Grüneisen model including Debye temperature, thermal expansion coefficient and vibrational heat capacity as well as vibrational entropy. Taking into account the contribution of the lattice vibration and thermal electronic excitations, the Helmholtz free energy F can be calculated, suggests that anti-site defects caused by the occupancy of Mg at the Zn or Cu site are thermodynamically unstable compared to the defect-free phases. In addition, the total amount of charge transfer, the overall and the local difference charge densities are further discussed to analyze the mechanism of mechanical properties.
KW - Electronic properties
KW - Laves phases
KW - Point defects
KW - Thermodynamic properties
KW - Vibrational properties
UR - http://www.scopus.com/inward/record.url?scp=85045414424&partnerID=8YFLogxK
U2 - 10.1016/j.jssc.2018.04.001
DO - 10.1016/j.jssc.2018.04.001
M3 - Article
AN - SCOPUS:85045414424
SN - 0022-4596
VL - 263
SP - 18
EP - 23
JO - Journal of Solid State Chemistry
JF - Journal of Solid State Chemistry
ER -