When Density Functional Approximations Meet Iron Oxides
Author(s) -
Yu Meng,
Xingwu Liu,
ChunFang Huo,
Wenping Guo,
DongBo Cao,
Qing Peng,
Albert K. Dearden,
Xavier Gonze,
Yong Yang,
Jianguo Wang,
Haijun Jiao,
Yongwang Li,
Xiaodong Wen
Publication year - 2016
Publication title -
journal of chemical theory and computation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.001
H-Index - 185
eISSN - 1549-9626
pISSN - 1549-9618
DOI - 10.1021/acs.jctc.6b00640
Subject(s) - hybrid functional , iron oxide , density functional theory , lattice constant , band gap , oxide , electronic structure , materials science , phase (matter) , lattice (music) , electronic band , gibbs free energy , chemistry , thermodynamics , computational chemistry , physics , condensed matter physics , quantum mechanics , metallurgy , organic chemistry , diffraction , acoustics
Three density functional approximations (DFAs), PBE, PBE+U, and Heyd-Scuseria-Ernzerhof screened hybrid functional (HSE), were employed to investigate the geometric, electronic, magnetic, and thermodynamic properties of four iron oxides, namely, α-FeOOH, α-Fe 2 O 3 , Fe 3 O 4 , and FeO. Comparing our calculated results with available experimental data, we found that HSE (a = 0.15) (containing 15% "screened" Hartree-Fock exchange) can provide reliable values of lattice constants, Fe magnetic moments, band gaps, and formation energies of all four iron oxides, while standard HSE (a = 0.25) seriously overestimates the band gaps and formation energies. For PBE+U, a suitable U value can give quite good results for the electronic properties of each iron oxide, but it is challenging to accurately get other properties of the four iron oxides using the same U value. Subsequently, we calculated the Gibbs free energies of transformation reactions among iron oxides using the HSE (a = 0.15) functional and plotted the equilibrium phase diagrams of the iron oxide system under various conditions, which provide reliable theoretical insight into the phase transformations of iron oxides.
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