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Nonadiabatic decay dynamics of 9H-guanine in aqueous solution

机译:水溶液中9H-鸟嘌呤的非绝热衰减动力学

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The nonadiabatic decay of the biologically relevant guanine tautomer (9H-guanine) in aqueous solution has been investigated by trajectory surface hopping simulations in a quantum mechanical-molecular mechanical (QM-MM) framework. The QM part (9H-guanine) was treated at the semiempirical OM2/MRCI level, while the MM part (water) was described by the TIP3P force field. The optimized geometries for the relevant minima and conical intersections are qualitatively similar for 9H-guanine in the gas phase and in aqueous solution, while there are notable solvent-induced shifts in the computed vertical excitation energies (up to about 0.4 eV). Overall, the results from the static OM2/MRCI-based calculations are in reasonable agreement with the available ab initio and experimental data. The dynamics simulations show ultrafast nonradiative decay for 9H-guanine in water that is even slightly faster than in the gas phase, with time constants of 20 fs and around 0.3 ps for the S2→ Si and S1 →S0 internal conversions, respectively. They predict a change in the S1 → S_0 decay mechanism when going from the gas phase to aqueous solution: the major pathway for 9H-guanms in water involves a conical intersection with an out-of-plane distortion of the carbonyl oxygen atom, which does not play any significant role in the gas phase, where the decay mainly proceeds via two other conical intersections characterized by ring distortions and out-of-plane displacement of the amino group, respectively. Possible reasons for this change in the mechanism are analyzed.
机译:生物学相关的鸟嘌呤互变异构体(9H-鸟嘌呤)在水溶液中的非绝热衰变已经通过在量子力学-分子力学(QM-MM)框架中的轨迹表面跳变模拟进行了研究。 QM部分(9H-鸟嘌呤)以半经验OM2 / MRCI水平处理,而MM部分(水)由TIP3P力场描述。 9H-鸟嘌呤在气相和水溶液中的相关最小和圆锥形相交点的优化几何形状在质量上相似,而在计算出的垂直激发能(至多约0.4 eV)中有明显的溶剂诱导位移。总体而言,基于OM2 / MRCI的静态计算结果与可用的从头算和实验数据完全吻合。动力学模拟表明,水中9H鸟嘌呤的超快非辐射衰减比气相中的还要快,对于S2→Si和S1→S0内部转换,时间常数分别为20fs和0.3ps。他们预测了从气相到水溶液时S1→S_0衰减机制的变化:水中9H-胍的主要途径涉及一个圆锥形相交点,该相交点与羰基氧原子的面外畸变有关,在气相中没有任何重要作用,在气相中,衰变主要是通过另外两个锥形交叉点进行的,这两个锥形交叉点的特征分别是环畸变和氨基的平面外位移。分析了这种机制改变的可能原因。

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