Advanced Materials Engineering and Modelling Group, Wroclaw University of Science and Technology, Wyb. Wyspianskiego 27, Wroclaw, 50-370, Poland.
J Comput Chem. 2018 Jul 30;39(20):1470-1480. doi: 10.1002/jcc.25217. Epub 2018 Apr 10.
To account for systematic error of CASPT2 method empirical modification of the zeroth-order Hamiltonian with Ionization Potential-Electron Affinity (IPEA) shift was introduced. The optimized IPEA value (0.25 a.u.), called standard IPEA (S-IPEA), was recommended but due to its unsatisfactory performance in multiple metallic and organic compounds it has been questioned lately as a general parameter working properly for all molecules under CASPT2 study. As we are interested in Schiff bases of retinal, an important question emerging from this conflict of choice, to use or not to use S-IPEA, is whether the introduction of the modified zeroth-order Hamiltonian into CASPT2 ansatz does really improve their energetics. To achieve this goal, we assessed an impact of the IPEA shift value, in a range of 0-0.35 a.u., on vertical excitation energies to low-lying singlet states of two protonated (RPSBs) and two unprotonated (RSBs) Schiff bases of retinal for which experimental data in gas phase are available. In addition, an effect of geometry, basis set, and active space on computed VEEs is also reported. We find, that for these systems, the choice of S-IPEA significantly overestimates both S →S and S →S energies and the best theoretical estimate, in reference to the experimental data, is provided with either unmodified zeroth-order Hamiltonian or small value of the IPEA shift in a range of 0.05-0.15 a.u., depending on active space and basis set size, equilibrium geometry, and character of the excited state. © 2018 Wiley Periodicals, Inc.
为了弥补 CASPT2 方法的系统误差,引入了用电离势-电子亲合势(IPEA)位移修正零级哈密顿量的方法。推荐了优化的 IPEA 值(0.25 au),称为标准 IPEA(S-IPEA),但由于其在多种金属和有机化合物中的性能不佳,最近有人质疑它是否是一个适用于所有在 CASPT2 研究下的分子的通用参数。由于我们对视网膜席夫碱感兴趣,从这个选择的冲突中出现了一个重要的问题,即是否在 CASPT2 假设中引入修正后的零级哈密顿量真的可以改善它们的能量学。为了达到这个目标,我们评估了 IPEA 位移值(0-0.35 au)对两个质子化(RPSBs)和两个未质子化(RSBs)视网膜席夫碱的低能 singlet 态的垂直激发能的影响,对于这些体系,实验数据可在气相中获得。此外,还报告了几何形状、基组和活性空间对计算 VEE 的影响。我们发现,对于这些体系,S-IPEA 的选择会显著高估 S→S 和 S→S 能量,而与实验数据最接近的最佳理论估计是使用未经修正的零级哈密顿量或 IPEA 位移的小值(0.05-0.15 au),这取决于活性空间和基组大小、平衡几何形状和激发态的性质。