Komarov Konstantin, Park Woojin, Lee Seunghoon, Huix-Rotllant Miquel, Choi Cheol Ho
Center for Quantum Dynamics, Pohang University of Science and Technology, Pohang 37673, South Korea.
Department of Chemistry, Kyungpook National University, Daegu 41566, South Korea.
J Chem Theory Comput. 2023 Nov 14;19(21):7671-7684. doi: 10.1021/acs.jctc.3c00884. Epub 2023 Oct 16.
It is demonstrated that significant accuracy improvements in MRSF-TDDFT can be achieved by introducing two different exchange-correlation (XC) functionals for the reference Kohn-Sham DFT and the response part of the calculations, respectively. Accordingly, two new XC functionals of doubly tuned Coulomb attenuated method-vertical excitation energy (DTCAM-VEE) and DTCAM-AEE were developed on the basis of the "adaptive exact exchange (AEE)" concept in the framework of the Coulomb-attenuating XC functionals. The values by DTCAM-VEE are in excellent agreement with those of Thiel's set [mean absolute errors (MAEs) and the interquartile range (IQR) values of 0.218 and 0.327 eV, respectively]. On the other hand, DTCAM-AEE faithfully reproduced the qualitative aspects of conical intersections (CIs) of -butadiene and thymine and the nonadiabatic molecular dynamics (NAMD) simulations on thymine. The latter functional also remarkably exhibited the exact 1/ asymptotic behavior of the charge-transfer state of an ethylene-tetrafluoroethylene dimer and the accurate potential energy surfaces (PESs) along the two torsional angles of retinal protonated Schiff base model with six double bonds (rPSB6). Overall, DTCAM-AEE generally performs well, as its MAE (0.237) and IQR (0.41 eV) are much improved as compared to BH&HLYP. The current idea can also be applied to other XC functionals as well as other variants of linear response theories, opening a new way of developing XC functionals.
结果表明,通过分别为参考的Kohn-Sham密度泛函理论(DFT)和计算的响应部分引入两种不同的交换相关(XC)泛函,可以显著提高MRSF-TDDFT的精度。因此,在库仑衰减XC泛函框架下,基于“自适应精确交换(AEE)”概念,开发了两种新的XC泛函,即双调谐库仑衰减方法-垂直激发能(DTCAM-VEE)和DTCAM-AEE。DTCAM-VEE得到的值与Thiel数据集的值非常吻合[平均绝对误差(MAE)和四分位间距(IQR)值分别为0.218和0.327 eV]。另一方面,DTCAM-AEE忠实地再现了丁二烯和胸腺嘧啶的锥形交叉点(CIs)的定性特征以及胸腺嘧啶的非绝热分子动力学(NAMD)模拟。后一种泛函还显著地展现了乙烯-四氟乙烯二聚体电荷转移态的精确1/r渐近行为,以及沿具有六个双键的视网膜质子化席夫碱模型(rPSB6)的两个扭转角的精确势能面(PESs)。总体而言,DTCAM-AEE的表现通常良好,因为与BH&HLYP相比,其MAE(0.237)和IQR(0.41 eV)有了很大改进。当前的想法也可以应用于其他XC泛函以及线性响应理论的其他变体,为开发XC泛函开辟了一条新途径。