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氢键诱导的核酸碱基激发能位移:静电与电子密度重叠效应之间的相互作用

Hydrogen-bonding-induced shifts of the excitation energies in nucleic acid bases: an interplay between electrostatic and electron density overlap effects.

作者信息

Wesolowski Tomasz A

机构信息

Department of Physical Chemistry, University of Geneva, 30 quai Ernest-Ansermet, CH-1211 Geneva 4, Switzerland.

出版信息

J Am Chem Soc. 2004 Sep 22;126(37):11444-5. doi: 10.1021/ja048846g.

Abstract

The theoretically calculated dimerization-induced shifts of the lowest excitation energies in two model systems, adenine-thymine and guanine-cytosine base pairs, are analyzed. The applied formalism is based on first principles and allows one to study the influence of the microscopic environment of a given molecule on its ground- [Wesolowski, T. A.; Warshel, A. J. Phys. Chem. 1993, 97, 8050] and excited-state [Casida, M. E.; Wesolowski, T. A. Int. J. Quantum Chem. 2004, 96, 577] properties. The assessment of the relative importance of such effects as (a) Coulomb interactions, (b) orbital interactions, (c) electronic polarization of the environment, and (d) electron density overlap effects is straightforward in this formalism. In the applied formalism, electron density overlap effects can be further decomposed into the exchange-correlation component which provides a small attractive contribution and the repulsive kinetic energy-dependent component. It is shown that the shifts can be attributed to the electrostatic interactions and the repulsive overlap-dependent term in the embedding potential. The electronic polarization of the environment plays a significant role (up to 30% of the total shift) only in transitions involving the orbitals localized on hydrogen bond donor groups. For all analyzed shifts, the contribution of the intermolecular orbital interactions is negligible. The analysis of this work provides strong evidence supporting the use of the widely applied embedding-molecule strategy in computational studies of chromophores in a condensed phase even in such cases where only one end of the hydrogen bond is included in the quantum mechanical part.

摘要

分析了腺嘌呤 - 胸腺嘧啶和鸟嘌呤 - 胞嘧啶碱基对这两个模型系统中最低激发能的理论计算二聚化诱导位移。所应用的形式体系基于第一性原理,能够研究给定分子的微观环境对其基态[韦索洛夫斯基,T. A.;瓦尔舍尔,A.《物理化学杂志》1993年,97卷,8050页]和激发态[卡西达,M. E.;韦索洛夫斯基,T. A.《国际量子化学杂志》2004年,96卷,577页]性质的影响。在这种形式体系中,评估诸如(a)库仑相互作用、(b)轨道相互作用、(c)环境的电子极化以及(d)电子密度重叠效应等效应的相对重要性很直接。在所应用的形式体系中,电子密度重叠效应可进一步分解为提供小的吸引贡献的交换 - 相关分量和与排斥动能相关的分量。结果表明,这些位移可归因于嵌入势中的静电相互作用和与排斥重叠相关的项。环境的电子极化仅在涉及位于氢键供体基团上的轨道的跃迁中起显著作用(高达总位移的30%)。对于所有分析的位移,分子间轨道相互作用的贡献可忽略不计。这项工作的分析提供了有力证据,支持在凝聚相中发色团的计算研究中广泛应用的嵌入分子策略,即使在量子力学部分仅包含氢键一端的情况下也是如此。

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