Assessment of exchange-correlation functionals on oxygen vacancy formation energies of metal oxides

空位缺陷 密度泛函理论 氧气 混合功能 材料科学 氧化物 带隙 金属 凝聚态物理 热力学 物理 化学 计算化学 量子力学 冶金
作者
Jiangang He,Bianca Baldassarri,Chris Wolverton
出处
期刊:Physical review [American Physical Society]
卷期号:108 (10) 被引量:7
标识
DOI:10.1103/physrevb.108.104103
摘要

Oxygen vacancies are a common defect in oxides and play vital roles in many technological applications such as oxygen separation, catalytic reactors, solid oxide fuel cells, and solar thermochemical water splitting. The oxygen vacancy formation energy is directly related to the oxide reduction enthalpy and the vacancy concentration and, therefore, is a key quantity underlying these applications. The complexity of measuring oxygen vacancy formation energies experimentally suggests the utility of calculations based on density functional theory (DFT). However, the calculated results are strongly dependent on the exchange-correlation functionals and other parameters such as the Hubbard $U$. In this work, we compare the performance of the meta-GGA strongly constrained and appropriately normed (SCAN) functional and the commonly used semilocal generalized gradient approximation (GGA) functionals with experimental values of structural parameters, band gaps, magnetic structures, and oxygen vacancy formation energies for six representative oxides, i.e., ${\mathrm{CaMnO}}_{3}, {\mathrm{SrMnO}}_{3}, {\mathrm{LaMnO}}_{3}, {\mathrm{YMnO}}_{3}, {\mathrm{LaFeO}}_{3}$, and ${\mathrm{CeO}}_{2}$. Our results show that SCAN usually has better agreement with the experimental lattice constants and band gaps and larger magnetic moments than the commonly used GGA functionals. Although SCAN overestimates the oxygen vacancy formation energies of transition metal oxides and therefore requires unusually large Hubbard $U$ values to reproduce the experimental reduction enthalpies, it does predict the correct oxygen vacancy formation energy of ${\mathrm{CeO}}_{2}$, which challenges the commonly used GGA and hybrid functionals. Our results underscore the challenges that exist in describing these complex oxides by DFT and may shed light on developing more accurate exchange-correlation functionals for oxygen vacancy formation energy calculations.
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