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溶剂如何控制电子能量转移和光捕获:迈向反应场和屏蔽效应的量子力学描述。

How solvent controls electronic energy transfer and light harvesting: toward a quantum-mechanical description of reaction field and screening effects.

作者信息

Curutchet Carles, Scholes Gregory D, Mennucci Benedetta, Cammi Roberto

机构信息

Dipartimento di Chimica Generale ed Inorganica, Chimica Analitica e Chimica Fisica, Università di Parma, Parco Area delle Scienze, I-43100 Parma, Italy.

出版信息

J Phys Chem B. 2007 Nov 22;111(46):13253-65. doi: 10.1021/jp075411h. Epub 2007 Nov 1.

DOI:10.1021/jp075411h
PMID:17973520
Abstract

This paper presents a quantum-mechanical study of electronic energy transfer (EET) coupling on over 100 pairs of chromophores taken from photosynthetic light-harvesting antenna proteins. Solvation effects due to the protein, intrinsic waters, and surrounding medium are analyzed in terms of screening and reaction field contributions using a model developed recently that combines a linear response approach with the polarizable continuum model (PCM). We find that the screening of EET interactions is quite insensitive to the quantum-mechanical treatment adopted. In contrast, it is greatly dependent on the geometrical details (distance, shape, and orientation) of the chromophore pair considered. We demonstrate that implicit (reaction field) as well as screening effects are dictated mainly by the optical dielectric properties of the host medium, while the effect of the static properties is substantially less important. The empirical distance-dependent screening function we proposed in a recent letter (Scholes, G. D.; Curutchet, C.; Mennucci, B.; Cammi, R.; Tomasi, J. J. Phys. Chem. B 2007, 111, 6978-6982) is analyzed and compared to other commonly used screening factors. In addition, we show that implicit medium effects on the coupling, resulting from changes in the transition densities upon solvation, are strongly dependent on the particular system considered, thus preventing the possibility of defining a general empirical expression for such an effect.

摘要

本文对取自光合捕光天线蛋白的100多对发色团之间的电子能量转移(EET)耦合进行了量子力学研究。利用最近开发的一个将线性响应方法与极化连续介质模型(PCM)相结合的模型,从屏蔽和反应场贡献方面分析了蛋白质、固有水和周围介质引起的溶剂化效应。我们发现,EET相互作用的屏蔽对所采用的量子力学处理相当不敏感。相比之下,它很大程度上取决于所考虑的发色团对的几何细节(距离、形状和取向)。我们证明,隐式(反应场)以及屏蔽效应主要由主体介质的光学介电性质决定,而静态性质的影响则重要得多。我们分析了最近在一篇快报中提出的经验性距离依赖屏蔽函数(斯科尔斯,G.D.;库鲁切特,C.;门努奇,B.;卡米,R.;托马西,J.《物理化学杂志B》2007年,111卷,6978 - 6982页),并将其与其他常用的屏蔽因子进行了比较。此外,我们表明,溶剂化时跃迁密度变化所导致的隐式介质对耦合的影响强烈依赖于所考虑的特定系统,因此无法为这种效应定义一个通用的经验表达式。

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