Szefczyk Borys, Grabarek Dawid, Walczak Elżbieta, Andruniów Tadeusz
Advanced Materials Engineering and Modelling Group, Department of Chemistry, Wroclaw University of Science and Technology, Wyb. Wyspianskiego 27, Wroclaw, 50-370, Poland.
J Comput Chem. 2017 Jul 15;38(20):1799-1810. doi: 10.1002/jcc.24821. Epub 2017 May 17.
This study provides gas-phase S excited-state geometries along with emission and adiabatic energies for methylated/demethylated and ring-locked analogues of protonated Schiff base retinal models comprising system of five conjugated double bonds (PSB5), using second order multiconfiguration perturbation theory (CASPT2). CASPT2 results serve as reference data to assess the performance of CC2 (second-order approximate coupled cluster singles and doubles) and a commonly used CASSCF/CASPT2 protocol, that is, complete active space self-consistent field (CASSCF) geometry optimization followed by CASPT2 energy calculation. We find that the CASSCF methodology fails to locate planar S minimum energy structures for four out of five investigated planar models in contrast to CC2 and CASPT2 methods. However, for those which were found: one planar and two twisted minima, there is an excellent agreement between CASSCF and CASPT2 results in terms of geometrical parameters, one-electron properties, as well as emission and adiabatic energies. CC2 performs well for in-plane S minima and their spectroscopic and electronic properties. However, this picture deteriorates for twisted minima. As expected, the CC2 description of the S electronic state, with strong multireference and significant double excitation character, is very poor, exhibiting errors in transition energies exceeding 1 eV. They may be substantially diminished by recalculating transition energies with CASPT2 method. Our work shows that CASSCF/CASPT2 and CC2 shortcomings may influence gas-phase retinal analogues' excited state description in a dramatic way. © 2017 Wiley Periodicals, Inc.
本研究使用二阶多组态微扰理论(CASPT2),提供了包含五个共轭双键体系(PSB5)的质子化席夫碱视网膜模型的甲基化/去甲基化和环锁定类似物的气相S激发态几何结构以及发射能和绝热能。CASPT2结果作为参考数据,用于评估CC2(二阶近似耦合簇单双激发)和一种常用的CASSCF/CASPT2协议的性能,即完全活性空间自洽场(CASSCF)几何优化,随后进行CASPT2能量计算。我们发现,与CC2和CASPT2方法相比,CASSCF方法未能为五个研究的平面模型中的四个找到平面S最低能量结构。然而,对于那些找到的结构:一个平面和两个扭曲的最小值,CASSCF和CASPT2结果在几何参数、单电子性质以及发射能和绝热能方面有很好的一致性。CC2对于平面内S最小值及其光谱和电子性质表现良好。然而,对于扭曲的最小值,情况变差。正如预期的那样,CC2对具有强大多参考和显著双激发特征 的S电子态的描述非常差,跃迁能量误差超过1 eV。通过使用CASPT2方法重新计算跃迁能量,这些误差可能会大幅减小。我们的工作表明,CASSCF/CASPT2和CC2的缺点可能会极大地影响气相视网膜类似物的激发态描述。© 2017威利期刊公司