Rubešová Martina, Muchová Eva, Slavíček Petr
Department of Physical Chemistry, University of Chemistry and Technology , Technická 5, 16628 Prague, Czech Republic.
J Chem Theory Comput. 2017 Oct 10;13(10):4972-4983. doi: 10.1021/acs.jctc.7b00675. Epub 2017 Sep 25.
The applicability range of density functional theory (DFT) can be improved with no additional parametrization by imposing some exact conditions. Enforcing equality between the orbital energy of the highest occupied Kohn-Sham orbital and ionization energy, determined from the total energy difference between neutral and ionized states (ΔKS), leads to the concept of optimally tuned range-separated hybrid functionals. Here, we present an alternative tuning scheme for range-separated hybrid functionals based on enforcing the equality between the ΔKS ionization energy and the ionization energy calculated by means of the time-dependent DFT using the concept of ionization as an excitation to the distant center (OT-IEDC scheme). The scheme can be naturally applied to solvated systems described either within the explicit solvation or dielectric continuum models. We test the performance of the scheme on a benchmark set of molecules. We further show that the scheme allows for reliably modeling liquid phase photoemission spectra.
通过施加一些精确条件,无需额外参数化即可提高密度泛函理论(DFT)的适用范围。强制最高占据的Kohn-Sham轨道的轨道能量与电离能相等(由中性和电离态之间的总能量差(ΔKS)确定),引出了最优调谐范围分离混合泛函的概念。在此,我们提出了一种基于强制ΔKS电离能与通过含时密度泛函理论利用电离作为向远处中心激发的概念计算的电离能相等的范围分离混合泛函的替代调谐方案(OT-IEDC方案)。该方案可以自然地应用于在显式溶剂化或介电连续介质模型中描述的溶剂化体系。我们在一组基准分子上测试了该方案的性能。我们进一步表明,该方案能够可靠地模拟液相光发射光谱。