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Chemical Dynamics Special Feature: Photochemistry of hydrogen-bonded aromatic pairs: Quantum dynamical calculations for the pyrrole–pyridine complex

机译:化学动力学特性:氢键芳烃对的光化学:吡咯-吡啶配合物的量子动力学计算

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摘要

The photochemical dynamics of the pyrrole–pyridine hydrogen-bonded complex has been investigated with computational methods. In this system, a highly polar charge-transfer state of 1ππ* character drives the proton transfer from pyrrole to pyridine, leading to a conical intersection of S1 and S0 energy surfaces. A two-sheeted potential-energy surface including 39 in-plane nuclear degrees of freedom has been constructed on the basis of ab initio multiconfiguration electronic-structure data. The non-Born–Oppenheimer nuclear dynamics has been treated with time-dependent quantum wave-packet methods, including the two or three most relevant nuclear degrees of freedom. The effect of the numerous weakly coupled vibrational modes has been taken into account with reduced-density-matrix methods (multilevel Redfield theory). The results provide insight into the mechanisms of excited-state deactivation of hydrogen-bonded aromatic systems via the electron-driven proton-transfer process. This process is believed to be of relevance for the ultrafast excited-state deactivation of DNA base pairs and may contribute to the photostability of the molecular encoding of the genetic information.
机译:吡咯-吡啶氢键配合物的光化学动力学已经通过计算方法进行了研究。在该系统中, 1 ππ*特征的高极性电荷转移状态驱动质子从吡咯向吡啶的转移,从而导致S1和S0能量表面呈圆锥形相交。基于从头开始的多配置电子结构数据,已构建了一个两层的势能表面,包括39个面内核自由度。非伯恩-奥本海默核动力学已经用与时间有关的量子波包方法进行了处理,包括两个或三个最相关的核自由度。降低密度矩阵方法(多级Redfield理论)已经考虑了许多弱耦合振动模式的影响。结果提供了对通过电子驱动质子转移过程的氢键合芳族体系的激发态失活机理的见解。据信该过程与DNA碱基对的超快激发态失活有关,并且可能有助于遗传信息的分子编码的光稳定性。

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