首页> 外文期刊>Journal of chemical theory and computation: JCTC >Multistate QM/QM Extrapolation of UV/Vis Absorption Spectra with Point Charge Embedding
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Multistate QM/QM Extrapolation of UV/Vis Absorption Spectra with Point Charge Embedding

机译:多岩QM / QM外推,UV / Vis吸收光谱用点充电嵌入

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摘要

The simulation of UV/vis absorption spectra of large chromophores is prohibitively expensive with accurate quantum mechanical (QM) methods. Thus, hybrid methods, which treat the core chromophoric region at a high level of theory while the substituent effects are treated with a more computationally efficient method, may provide the best compromise between cost and accuracy. The ONIOM (Our own N-layered Integrated molecular Orbital molecular Mechanics) method has proved successful at describing ground-state processes. However, for excited states, it suffers from difficulties in matching the correct excited states among the different levels of theory. We devised an approach, based on the ONIOM extrapolation formula, to combine two QM levels of theory to extrapolate entire excitation bands rather than individual states. In this contribution, we extend the same QM/QM hybrid scheme to include polarization effects on the core region through point charge embedding. The charges are computed to reproduce the electrostatic potential of the entire chromophore at the low level of theory, with proper constraints to avoid overpolarization issues at the boundary between layers. We test this approach on a variety of model compounds that show how the multistate QM/QM-embedding scheme is able to accurately reproduce the spectrum of the entire system at the high level of theory better than (i) the bare QM/QM hybrid scheme, (ii) the low-level calculation on the entire system, and (iii) the high-level calculation on the core region.
机译:大型发色团的UV / Vis吸收光谱的模拟与精确的量子机械(QM)方法非常昂贵。因此,在高水平理论下处理核心发色区域的混合方法,同时用更改的效率处理取代效果,可以在成本和准确性之间提供最佳折衷。 oniom(我们自己的n层集成分子轨道分子机械)方法证明了在描述地面过程中成功。然而,对于兴奋状态,它遭受匹配不同理论水平的正确激发状态的困难。我们根据Oniom推断公式设计了一种方法,将两个QM水平的理论结合起来,以推断整个激发乐队而不是个体状态。在这一贡献中,我们通过点电荷嵌入延伸相同的QM / QM混合方案,以包括对核心区域的偏振效应。计算电荷以在低级别的理论下再现整个发色团的静电电位,具有适当的约束,以避免层之间的边界处的超分子化问题。我们在各种模型化合物上测试这种方法,展示多态QM / QM嵌入方案如何能够在高度理论上精确地再现整个系统的频谱,而不是(i)裸QM / QM混合方案(ii)整个系统的低级计算,(iii)核心区域的高级计算。

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