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氢键分子体系光物理的计算研究。

Computational studies of the photophysics of hydrogen-bonded molecular systems.

作者信息

Sobolewski Andrzej L, Domcke Wolfgang

机构信息

Institute of Physics, Polish Academy of Sciences, PL-02668 Warsaw, Poland.

出版信息

J Phys Chem A. 2007 Nov 22;111(46):11725-35. doi: 10.1021/jp075803o. Epub 2007 Oct 17.

Abstract

The role of electron- and proton-transfer processes in the photophysics of hydrogen-bonded molecular systems has been investigated with ab initio electronic-structure calculations. Adopting indole, pyridine, and ammonia as molecular building blocks, we discuss generic mechanisms of the photophysics of isolated aromatic chromophores (indole), complexes of pi systems with solvent molecules (indole-ammonia, pyridine-ammonia), hydrogen-bonded aromatic pairs (indole-pyridine), and intramolecularly hydrogen-bonded pi systems (7-(2'-pyridyl)indole). The reaction mechanisms are discussed in terms of excited-state minimum-energy paths, conical intersections, and the properties of frontier orbitals. A common feature of the photochemistry of the various systems is the electron-driven proton-transfer (EDPT) mechanism: highly polar charge-transfer states of 1pipi*, 1npi*, or 1pisigma* character drive the proton transfer, which leads, in most cases, to a conical intersection of the S1 and S0 surfaces and thus ultrafast internal conversion. In intramolecularly hydrogen-bonded aromatic systems, out-of-plane torsion is additionally needed for barrierless access to the S1-S0 conical intersection. The EDPT process plays an essential role in diverse photophysical phenomena, such as fluorescence quenching in protic solvents, the function of organic photostabilizers, and the photostability of biological molecules.

摘要

通过从头算电子结构计算研究了电子和质子转移过程在氢键分子体系光物理中的作用。以吲哚、吡啶和氨作为分子构建单元,我们讨论了孤立芳香发色团(吲哚)、π体系与溶剂分子的复合物(吲哚 - 氨、吡啶 - 氨)、氢键芳香对(吲哚 - 吡啶)以及分子内氢键π体系(7 - (2'-吡啶基)吲哚)的光物理一般机制。从激发态最小能量路径、锥形交叉点和前沿轨道的性质方面讨论了反应机制。各种体系光化学的一个共同特征是电子驱动质子转移(EDPT)机制:具有1ππ*、1nπ或1πσ特征的高极性电荷转移态驱动质子转移,在大多数情况下,这会导致S1和S0表面的锥形交叉点,从而实现超快内转换。在分子内氢键芳香体系中,还需要面外扭转才能无障碍地到达S1 - S0锥形交叉点。EDPT过程在多种光物理现象中起着至关重要的作用,例如质子溶剂中的荧光猝灭、有机光稳定剂的功能以及生物分子的光稳定性。

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