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Exciton delocalization, charge transfer, and electronic coupling for singlet excitation energy transfer between stacked nucleobases in DNA: An MS-CASPT2 study

机译:激子离域,电荷转移和电子耦合,用于DNA中堆叠核碱基之间的单线激发能量转移:MS-CASPT2研究

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摘要

Exciton delocalization and singlet excitation energy transfer have been systematically studied for the complete set of 16 DNA nucleobase dimers in their ideal, single-strand stacked B-DNA conformation, at the MS-CASPT2 level of theory. The extent of exciton delocalization in the two lowest (π,π*) states of the dimers is determined using the symmetrized one-electron transition density matrices between the ground and excited states, and the electronic coupling is calculated using the delocalization measure and the energy splitting between the states [see F. Plasser, A. J. A. Aquino, W. L. Hase, and H. Lischka, J. Phys. Chem. A 116, 11151-11160 (2012)]. The calculated couplings lie between 0.05 eV and 0.14 eV. In the B-DNA conformation, where the interchromophoric distance is 3.38 Å, our couplings deviate significantly from those calculated with the transition charges, showing the importance of orbital overlap components for the couplings in this conformation. The calculation of the couplings is based on a two-state model for exciton delocalization. However, in three stacks with a purine in the 5′ position and a pyrimidine in the 3′ one (AT, GC, and GT), there is an energetically favored charge transfer state that mixes with the two lowest excited states. In these dimers we have applied a three-state model that considers the two locally excited diabatic states and the charge transfer state. Using the delocalization and charge transfer descriptors, we obtain all couplings between these three states. Our results are important in the context of DNA photophysics, since the calculated couplings can be used to parametrize effective Hamiltonians to model extended DNA stacks. Our calculations also suggest that the 5′-purine-pyrimidine- 3′ sequence favors the formation of charge transfer excited state
机译:已经在MS-CASPT2的理论水平上系统地研究了16个DNA核碱基二聚体在其理想的单链堆叠B-DNA构象中的激子离域和单重态激发能转移。使用基态和激发态之间对称的单电子跃迁密度矩阵确定二聚体的两个最低(π,π*)状态中激子的离域程度,并使用离域量度和能量计算电子耦合各州之间的分裂[请参阅F. Plasser,AJA Aquino,WL Hase和H. Lischka,J。Phys。化学A 116,11151-11160(2012)]。计算的耦合介于0.05 eV和0.14 eV之间。在B-DNA构象中,发色间距离为3.38Å,我们的偶合与用过渡电荷计算的偶合显着偏离,表明在该构象中,轨道重叠成分对于偶合非常重要。耦合的计算基于激子离域的两态模型。但是,在3个堆栈中,嘌呤在5'位置,嘧啶在3'位置(AT,GC和GT),在能量上受支持的电荷转移状态与两个最低激发态混合。在这些二聚体中,我们应用了三态模型,该模型考虑了两个局部激发的非绝热态和电荷转移态。使用离域和电荷转移描述符,我们获得了这三个状态之间的所有耦合。我们的结果在DNA光物理的背景下很重要,因为计算的耦合可用于参数化有效的哈密顿量,以建模扩展的DNA堆栈。我们的计算还表明5'-嘌呤-嘧啶-3'序列有利于电荷转移激发态的形成

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