First principles study of structural, electronic, elastic and magnetic properties of cerium and pras

来源 :Journal of Rare Earths | 被引量 : 0次 | 上传用户:laoqiangshou
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The structural, electronic, elastic and magnetic properties of cerium, praseodymium and their hydrides REH x(RE=Ce, Pr and x=2, 3) were investigated by the first principles calculations based on density functional theory using the Vienna ab-initio simulation package. At zero pressure all the hydrides were stable in the ferromagnetic state. The calculated lattice parameters were in good agreement with the experimental results. The bulk modulus decreased with the increase in the hydrogen content for these hydrides. The electronic structure revealed that di-hydrides were metallic whereas trihydrides were half metallic at zero pressure. A pressure-induced structural phase transition from cubic to hexagonal phase was predicted in these hydrides. The computed elastic constants indicated that these hydrides were mechanically stable at zero pressure. The calculated Debye temperature values were in good agreement with experimental and other theoretical results. A half metallic to metallic transition was also observed in REH3 under high pressure. Ferromagnetism was quenched in these hydrides at high pressures. The structural, electronic, elastic and magnetic properties of cerium, praseodymium and their hydrides REH x (RE = Ce, Pr and x = 2, 3) were investigated by the first principles calculations based on density functional theory using the Vienna ab initio simulation package. At zero pressure all the hydrides were stable in the ferromagnetic state. The calculated lattice parameters were in good agreement with the experimental results. The bulk size decreased with the increase in the hydrogen content for these hydrides. The electronic structure that that- hydrides were metallic primarily trihydrides were half metallic at zero pressure. A pressure-induced structural phase transition from cubic to hexagonal phase was predicted in these hydrides. The computed elastic constants indicated that these hydrides were mechanically stable at zero pressure. The calculated Debye temperature values were in good agreement with experimental and other theoretical results. A half metallic to metallic trans ition was also observed in REH3 under high pressure. Ferromagnetism was quenched in these hydrides at high pressures.
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