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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Putting DFT to the Test: A First-Principles Study of Electronic, Magnetic, and Optical Properties of Co3O4
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Putting DFT to the Test: A First-Principles Study of Electronic, Magnetic, and Optical Properties of Co3O4

机译:测试DFT:Co3O4的电子,磁性和光学性质的第一性原理研究

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First-principles density functional theory (DFT) and a many-body Greens function method have been employed to elucidate the electronic, magnetic, and photonic properties of a spinel compound, Co3O4. Co3O4 is an antiferromagnetic semiconductor composed of cobalt ions in the Co2+ and Co3+ oxidation states. Co3O4 is believed to be a strongly correlated material, where the on-site Coulomb interaction (U) on Co d orbitals is presumably important, although this view has recently been contested. The suggested optical band gap for this material ranges from 0.8 to 2.0 eV, depending on the type of experiments and theoretical treatment. Thus, the correlated nature of the Co d orbitals in Co3O4 and the extent of the band gap are still under debate, raising questions regarding the ability of DFT to correctly treat the electronic structure in this material. To resolve the above controversies, we have employed a range of theoretical methods, including pure DFT, DFT+U, and a range-separated exchangecorrelation functional (HSE06) as well as many-body Greens function theory (i.e., the GW method). We compare the electronic structure and band gap of Co3O4 with available photoemission spectroscopy and optical band gap data and confirm a direct band gap of ca. 0.8 eV. Furthermore, we have also studied the optical properties of Co3O4 by calculating the imaginary part of the dielectric function (Im(epsilon)), facilitating direct comparison with the measured optical absorption spectra. Finally, we have calculated the nearest-neighbor interaction (J1) between Co2+ ions to understand the complex magnetic structure of Co3O4.
机译:第一原理密度泛函理论(DFT)和多体格林函数方法已被用来阐明尖晶石化合物Co3O4的电子,磁性和光子性质。 Co3O4是一种反铁磁半导体,由处于Co2 +和Co3 +氧化态的钴离子组成。 Co3O4被认为是一种高度相关的材料,尽管CodO轨道上的库仑相互作用(U)在Co d轨道上很重要,但这种观点最近受到了质疑。对于这种材料,建议的光学带隙范围为0.8到2.0 eV,具体取决于实验类型和理论处理。因此,Co3O4中Cod轨道的相关性质和带隙的程度仍在争论中,引发了有关DFT正确处理这种材料中电子结构的能力的疑问。为了解决上述争议,我们采用了一系列理论方法,包括纯DFT,DFT + U和范围分隔的交换相关函数(HSE06)以及多体格林函数理论(即GW方法)。我们将Co3O4的电子结构和带隙与可用的光发射光谱和光学带隙数据进行了比较,并确认了约3的直接带隙。 0.8 eV。此外,我们还通过计算介电函数的虚部(Im(epsilon))研究了Co3O4的光学性质,以便与测量的光吸收光谱进行直接比较。最后,我们计算了Co2 +离子之间的最近邻相互作用(J1),以了解Co3O4的复杂磁结构。

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