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Theoretical study of excited states of DNA base dimers and tetramers using optimally tuned range-separated density functional theory

机译:DNA碱基二聚体和四聚体激发态的最佳调谐范围分离密度泛函理论的理论研究

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摘要

Excited states of various DNA base dimers and tetramers including Watson-Crick H-bonding and stacking interactions have been investigated by time-dependent density functional theory using nonempirically tuned range-separated exchange (RSE) functionals. Significant improvements are found in the prediction of excitation energies and oscillator strengths, with results comparable to those of high-level coupled-cluster (CC) models (RI-CC2 and EOM-CCSD(T)). The optimally-tuned RSE functional significantly outperforms its non-tuned (default) version and widely-used B3LYP functional. Compared to those high-level CC benchmarks, the large mean absolute deviations of conventional functionals can be attributed to their inappropriate amount of exact exchange and large delocalization errors which can be greatly eliminated by tuning approach. Furthermore, the impacts of H-bonding and -stacking interactions in various DNA dimers and tetramers are analyzed through peak shift of simulated absorption spectra as well as corresponding change of absorption intensity. The result indicates the stacking interaction in DNA tetramers mainly contributes to the hypochromicity effect. The present work provides an efficient theoretical tool for accurate prediction of optical properties and excited states of nucleobase and other biological systems. (c) 2015 Wiley Periodicals, Inc.
机译:已通过时变密度泛函理论,使用非经验调谐范围分离交换(RSE)功能,研究了各种DNA基础二聚体和四聚体(包括Watson-Crick H键和堆积相互作用)的激发态。在激励能量和振荡器强度的预测中发现了显着的改进,其结果与高级耦合簇(CC)模型(RI-CC2和EOM-CCSD(T))的结果相当。最佳调整后的RSE功能明显优于其非调整(默认)版本和广泛使用的B3LYP功能。与那些高级CC基准相比,常规功能的平均均值偏差较大,可以归因于其不适当的精确交换量和较大的离域误差,这些误差可以通过调整方法大大消除。此外,通过模拟吸收光谱的峰移以及吸收强度的相应变化,分析了各种DNA二聚体和四聚体中H键和堆积相互作用的影响。结果表明,DNA四聚体中的堆叠相互作用主要是造成了变色效应。本工作提供了一个有效的理论工具,可准确预测光学性质和核碱基及其他生物系统的激发态。 (c)2015年威利期刊有限公司

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