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Assessment of approximate computational methods for conical intersections and branching plane vectors in organic molecules

机译:评估有机分子中圆锥形交叉点和分支平面向量的近似计算方法

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摘要

Quantum-chemical computational methods are benchmarked for their ability to describe conical intersections in a series of organic molecules and models of biological chromophores. Reference results for the geometries, relative energies, and branching planes of conical intersections are obtained using ab initio multireference configuration interaction with single and double excitations (MRCISD). They are compared with the results from more approximate methods, namely, the state-interaction state-averaged restricted ensemble-referenced Kohn-Sham method, spin-flip time-dependent density functional theory, and a semiempirical MRCISD approach using an orthogonalization-corrected model. It is demonstrated that these approximate methods reproduce the ab initio reference data very well, with root-mean-square deviations in the optimized geometries of the order of 0.1 ? or less and with reasonable agreement in the computed relative energies. A detailed analysis of the branching plane vectors shows that all currently applied methods yield similar nuclear displacements for escaping the strong non-adiabatic coupling region near the conical intersections. Our comparisons support the use of the tested quantum-chemical methods for modeling the photochemistry of large organic and biological systems.
机译:量子化学计算方法以其描述一系列有机分子和生物发色团模型中的圆锥形交点的能力为基准。圆锥相交的几何形状,相对能量和分支平面的参考结果是使用从头开始的多参考配置相互作用与单激发和双激发(MRCISD)获得的。将它们与更近似方法的结果进行比较,这些方法是状态交互状态平均受限集成参考的Kohn-Sham方法,自旋翻转时间相关的密度泛函理论以及使用正交校正模型的半经验MRCISD方法。结果表明,这些近似方法可以很好地重现从头算参考数据,优化几何结构的均方根偏差约为0.1?或更少,并且在计算出的相对能量上具有合理的一致性。对分支平面向量的详细分析表明,所有当前应用的方法都产生相似的核位移,以逃避圆锥形交叉点附近的强非绝热耦合区域。我们的比较支持使用经过测试的量子化学方法对大型有机和生物系统的光化学建模。

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