Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5447386 | Journal of Physics and Chemistry of Solids | 2017 | 6 Pages |
Abstract
The mechanical, electronic and thermal physical properties of A-type R2O3 (R=Y, La) under hydrostatic pressure are studied by first-principles calculations. The calculated band gap is 6.3Â eV (5.9Â eV) for Y2O3 (La2O3). Under hydrostatic pressure, both phases show anisotropic elasticity in different crystallographic directions. The isothermal bulk modulus of R2O3 decreases monotonically with the increasing of temperature from 300Â K to 1500Â K. The intrinsic ductile nature of both phases is confirmed by the obtained B/G ratio. The temperature dependence of linear TECs of La2O3 is stronger than that of Y2O3, and the linear TECs in [001] direction show larger values in both phases than those in [010] direction. At room temperature, the average linear TECs for Y2O3 and La2O3 are 8.40Ã10â6Â Kâ1 and 8.42Ã10â6Â Kâ1, respectively. Other thermal physical properties such as specific heats (CV, and CP), entropy (S), sound velocity and Debye temperature are also obtained.
Related Topics
Physical Sciences and Engineering
Materials Science
Electronic, Optical and Magnetic Materials
Authors
Y.F. Li, B. Xiao, L. Sun, Y.M. Gao, S.Q. Ma, D.W. Yi,