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气相中尿嘧啶超快弛豫过程中动态相关的影响。

Effect of dynamic correlation on the ultrafast relaxation of uracil in the gas phase.

机构信息

Department of Chemistry, Temple University, Philadelphia, Pennsylvania 19122, USA.

Department of Physics and Astronomy, Stony Brook University, New York 11794, USA.

出版信息

Faraday Discuss. 2021 May 27;228(0):266-285. doi: 10.1039/d0fd00110d.

Abstract

The photophysics and photochemistry of DNA/RNA nucleobases have been extensively investigated during the past two decades, both experimentally and theoretically. The ultrafast relaxation of the canonical nucleobases following photoexcitation is of significant interest when it comes to understanding how nature has ensured their photostability. Here we study the excited state dynamics of uracil which is a nucleobase found in RNA. Although theory and experiment have shed significant light on understanding the photoexcited dynamics of uracil, there are still disagreements in the literature about specific details. In order to examine how the dynamics is influenced by the underlying electronic structure theory, we have performed non-adiabatic excited state dynamics simulations of uracil using on-the-fly trajectory surface hopping methodology on potential energy surfaces calculated at different electronic structure theory levels (CASSCF, MRCIS, XMS-CASPT2, TD-DFT). These simulations reveal that the dynamics are very sensitive to the underlying electronic structure theory, with the multi-reference theory levels that include dynamic correlation, predicting that there is no trapping on the absorbing S2 state, in contrast to predictions from lower level electronic structure results. The dynamics are instead governed by ultrafast decay to the ground state, or trapping on the dark S1 state.

摘要

在过去的二十年中,无论是在实验上还是理论上,人们都广泛研究了 DNA/RNA 核苷酸碱基的光物理和光化学。在理解自然界如何确保其光稳定性时,研究光激发后典型核苷酸碱基的超快弛豫具有重要意义。在这里,我们研究了尿嘧啶的激发态动力学,尿嘧啶是 RNA 中的一种核苷酸碱基。尽管理论和实验已经阐明了理解尿嘧啶光激发动力学的重要意义,但文献中仍然存在关于具体细节的争议。为了研究动力学如何受到潜在电子结构理论的影响,我们使用实时轨迹表面跳跃方法,在不同电子结构理论水平(CASSCF、MRCIS、XMS-CASPT2、TD-DFT)上计算的势能表面上,对尿嘧啶进行了非绝热激发态动力学模拟。这些模拟表明,动力学对潜在的电子结构理论非常敏感,包括动态相关的多参考理论水平,预测在吸收 S2 态上没有捕获,这与较低电子结构结果的预测相反。相反,动力学由超快衰减到基态或在暗 S1 态上的捕获来控制。

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