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首页> 外文期刊>The Journal of Chemical Physics >Increasing the applicability of density functional theory. V. X-ray absorption spectra with ionization potential corrected exchange and correlation potentials
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Increasing the applicability of density functional theory. V. X-ray absorption spectra with ionization potential corrected exchange and correlation potentials

机译:增加密度泛函理论的适用性。 V.具有电离势的X射线吸收光谱校正了交换和相关势

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Core excitation energies are computed with time-dependent density functional theory (TD-DFT) using the ionization energy corrected exchange and correlation potential QTP(0,0). QTP(0,0) provides C, N, and O K-edge spectra to about an electron volt. A mean absolute error (MAE) of 0.77 and a maximum error of 2.6 eV is observed for QTP(0,0) for many small molecules. TD-DFT based on QTP (0,0) is then used to describe the core-excitation spectra of the 22 amino acids. TD-DFT with conventional functionals greatly underestimates core excitation energies, largely due to the significant error in the Kohn-Sham occupied eigenvalues. To the contrary, the ionization energy corrected potential, QTP(0,0), provides excellent approximations (MAE of 0.53 eV) for core ionization energies as eigenvalues of the Kohn-Sham equations. As a consequence, core excitation energies are accurately described with QTP(0,0), as are the core ionization energies important in X-ray photoionization spectra or electron spectroscopy for chemical analysis. Published by AIP Publishing.
机译:使用电离能校正的交换和相关势QTP(0,0),通过时变密度泛函理论(TD-DFT)计算核激发能。 QTP(0,0)提供大约一个电子伏特的C,N和O K边缘光谱。对于许多小分子,QTP(0,0)的平均绝对误差(MAE)为0.77,最大误差为2.6 eV。然后使用基于QTP(0,0)的TD-DFT来描述22个氨基酸的核心激发光谱。具有传统功能的TD-DFT大大低估了磁芯的激发能,这在很大程度上是因为Kohn-Sham占据的特征值存在重大误差。相反,电离能校正电势QTP(0,0)为核心电离能提供了极好的近似值(MAE为0.53 eV),作为Kohn-Sham方程的特征值。因此,可以用QTP(0,0)准确地描述核心激发能,在化学分析的X射线电离光谱或电子光谱中,核心电离能也很重要。由AIP Publishing发布。

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