Abstract

The structural, elastic and electronic properties of Mg(Cu 1− x Zn x ) 2 alloys ( x = 0, 0.25, 0.5,and 0.75) were investigated by means of first-principle calculations within the framework of density functional theory (DFT). The calculation results demonstrated that the partial substitution of Cu with Zn in MgCu 2 leaded to an increase of lattice constants, and the optimized structural parameters were in very good agreement with the available experimental values. From energetic point of view, it was found that with increase of Zn content the structural stability of Mg(Cu 1− x Zn x ) 2 alloys decreased apparently. The single-crystal elastic constants were obtained by computing total energy as a function of strain, and then the bulk modulus B, shear modulus G, Young's modulus Y and Poisson's ratio ν of polycrystalline aggregates were derived. The calculated results showed that among the Mg(Cu 1− x Zn x ) 2 alloys, MgCuZn exhibited the largest stiffness, while Mg 2Cu 3Zn showed the best ductility. Finally, the electronic density of states (DOSs) and charge density distribution were further studied and discussed.

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