The structural and thermoelasticity of antifluorite magnesium silicide at high temperatures were studied by using the plane-wave pseudo-potential method in the framework of density functional theory. The bulk ground-state quantities such as lattice constants, cell volumes, band structures and elastic constants were calculated. It showed that the elastic constants of Mg2Si were well consistent with the experimental data under ambient conditions. The crystal cell volume and bulk modulus of Mg2Si as functions of applied temperature were also presented. The lattice dynamics was applied to determine the phonon dispersion curves. To complete the fundamental characterisation of this crystal, the coefficients of thermal expansion (CTE), isochoric heat capacities and Debye temperature of Mg2Si in the whole temperature range from 0 K to 1300 K and pressure range from 0 GPa to 7.48 GPa were investigated. The results were in favourable agreement with the previous theoretical calculations and the existing experimental data.
YU Ben-Hai
. Periodic DFT study on the structural and thermal properties 1mm of bulk anti-fluorite magnesium silicide[J]. Acta Metallurgica Sinica (English Letters), 2011
, 24(4)
: 271
-280
.
DOI: 10.11890/1006-7191-114-271
[1] H. Ishii, S. Matsuo, P. Karimov, K. Tanaka and J. Kawai, Phys Rev B 71 (2005) 205202.
[2] M. Akasaaka, T. Lida, A. Matsumoto, K. Yamanaka, Y.Takanashi, T. Imai and N. Hamada, J Appl Phys 104 (2008)013703.
[3] J.E. Mahan, A. Vantomme, G. Langouche and J.P. Becker, Phys Rev B 54 (1996) 16965.
[4] J.L. Corkill and M.L. Cohen, Phys Rev B 48 (1993) 17138.
[5] G.S. Nolas, D. Wang and M. Beekman, Phys Rev B 76 (2007) 235204.
[6] B.H. Yu, D. Chen, Q.B. Tang, C.L. Wang and D.H. Shi, J Phys Chem Solids 71 (2010) 758.
[7] G.H. Li, H.S. Gill and R.A. Varin, Metall Trans A 24 (1993) 2383.
[8] P. Baranek and J. Schamps, J Phys Chem B 103 (1999) 2601.
[9] H. Wang, H. Jin, W. Chu and Y. Guo, J Alloys Compd 499 (2010) 68.
[10] B. Arnaud and M. Alouani, Phys Rev B 64 (2001)033202.
[11] J. Hao, B. Zou, P. Zhu, C. Cao, Y. Li, D. Liu, K. Wang, W. Lei, Q. Cui and G. Zou, Solid State Commun 149 (2009)689.
[12] B.C. Gerstin, F.J. Jelinek, M. Habenschuss, W.D. Shickell, J.R. Mullaly and P.L. Chung, J Chem Phys 47 (1967) 2109.
[13] J.I. Tani and H. Kido, Comput Mater Sci 42 (2008) 531.
[14] N.N. Liu, R.B. Song and D.W. Du, Chin Phys B 18 (2009) 1979.
[15] O. Madelung and L. B\"{ornstein, Numerical Data and Functional Relationships in Science and Technology (Springer,Berlin, 1983) p163.
[16] W.B. Whitten, P.L. Chung and G.C. Danielson, J Phys Chem Solids 26 (1965) 49.
[17] S. Ganeshan, S.L. Shang, Y. Wang and Z.K. Zhu, J Alloys Compd 498 (2010) 191.
[18] P. Baranek, J. Schamps and I. Noiret, J Phys Chem B 101 (1997) 9147.
[19] Q. Chen, Q. Xie, C.H. Yang and F.J. Zhao, Acta Opt Sin 29 (2009) 229 (in Chinese).
[20] W. Kohn and L.J. Sham, Phys Rev 140 (1965)A1133.
[21] P. Giannozzi, S. Baroni and N. Bonini, J Phys: Condens Mater 21 (2009) 395502.
[22] J.P. Perdew, K. Burke and M. Ernzerhof, Phys Rev Lett 77 (1996) 3865.
[23] H.J. Monkhorst and J.D. Pack, Phys Rev B 13 (1976) 5188.
[24] X. Gonze, D.C. Allan and M.P. Teter, Phys Rev Lett 68 (1992) 3603.
[25] D. Chen, G. Xu, X. Zhang, Y. Zhao, B. Yu and D. Shi, Chin Phys Lett 25 (2008) 2950.
[26] L. Fast, J.M. Wills, B. Johansson and O. Eriksson, Phys Rev B 51 (1995) 17431.
[27] G.V. Sin'ko and N.A. Smirnow, J Phys: Condens Matter 14 (2002) 6989.
[28] L.R. Testardil, Rev Modern Phys 47 (1975)637.
[29] J.H. Wang, S. Yip, S.R. Phillpot and D. Wolf, Phys Rev Lett 71 (1993) 4182.
[30] F. Kalarasse and B. Bennecer, J Phys Chem Solids 69 (2008) 1775.
[31] F. Aymerich and G. Mula, Phys Status Solidi 42 (1970) 697.
[32] S.K. Thakur, B.K. Dhindaw, N. Hort and K.U. Kainer, Metall Mater Trans A 35 (2004) 1167.
[33] H. Feufel, T. Godecke, H.L. Lukas and F. Sommer, J Alloy Compd 247 (1997) 31.