时变密度泛函理论中的耦合矩阵元素对过渡金属复合物核心级光谱模拟的作用

Sarah Pak, Daniel R. Nascimento
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摘要

时间相关密度泛函理论(TD-DFT)是计算大分子,尤其是过渡金属复合物核心级光谱的有效工具。然而,尽管 TD-DFT 方法对计算的要求相对较低,但对于涉及过渡金属配合物的典型计算(基函数超过一千个)而言,仍然是一个挑战。在本研究中,我们研究了在模拟过渡金属配合物的核级光谱时,库仑、哈特里-福克交换和交换相关核对 TD-DFT 耦合矩阵元素的贡献。我们的观察发现,在混合 TD-DFT 计算中,交换相关核贡献占计算时间的 50%以上,但令人惊讶的是,它对计算光谱的质量方面没有明显影响。虽然库仑项在描述 L2,3 边缘光谱时起着至关重要的作用,但当考虑 K、L 1 和 M 4,5 边缘时,它的重要性就可以忽略不计了。相比之下,按比例哈特里-福克交换被证明是最有影响力的项,这突出了混合密度泛函近似在精确模拟核级光谱方面的必要性。无论选择哪种基集和交换相关函数,这些趋势都是成立的,这为开发近似方法以将双电子相互作用纳入核级光谱领域提供了宝贵的启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The role of the coupling matrix elements in time-dependent density functional theory on the simulation of core-level spectra of transition metal complexes
Time-dependent density functional theory (TD-DFT) stands out as an efficient tool for computing core-level spectra in large molecules, particularly transition metal complexes. However, despite their relatively moderate computational demands, TD-DFT methods can still pose challenges for typical computations involving transition metal complexes with over a thousand basis functions. In this study, we investigate the role of the Coulomb, Hartree-Fock exchange, and exchange-correlation kernel contributions to the TD-DFT coupling matrix elements when simulating core-level spectra in transition metal complexes. Our observations reveal that the exchange-correlation kernel contribution, responsible for more than 50% of the computational time in a hybrid TD-DFT calculation, surprisingly has no discernible impact on the qualitative aspects of the calculated spectra. While the Coulomb term plays a crucial role in describing L2,3-edge spectra, its significance becomes negligible when considering K, L 1 , and M 4,5 edges. In contrast, the scaled Hartree-Fock exchange is demonstrated to be the most influential term, underscoring the necessity for hybrid density functional approximations in accurately simulating core-level spectra. These trends hold irrespective of the chosen basis set and exchange-correlation functional, providing valuable insights for the development of approximate methods for incorporating two-electron interactions within the realm of core-level spectroscopies.
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