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强关联在活性空间变分双电子约化密度矩阵方法的并苯薄片中:对称性和尺寸的影响。

Strong correlation in acene sheets from the active-space variational two-electron reduced density matrix method: effects of symmetry and size.

机构信息

Department of Chemistry and The James Franck Institute, The University of Chicago, Chicago, Illinois 60637, USA.

出版信息

J Phys Chem A. 2011 Jun 9;115(22):5632-40. doi: 10.1021/jp2017192. Epub 2011 May 12.

Abstract

Polyaromatic hydrocarbons (PAHs) are a class of organic molecules with importance in several branches of science, including medicine, combustion chemistry, and materials science. The delocalized π-orbital systems in PAHs require highly accurate electronic structure methods to capture strong electron correlation. Treating correlation in PAHs has been challenging because (i) traditional wave function methods for strong correlation have not been applicable since they scale exponentially in the number of strongly correlated orbitals, and (ii) alternative methods such as the density-matrix renormalization group and variational two-electron reduced density matrix (2-RDM) methods have not been applied beyond linear acene chains. In this paper we extend the earlier results from active-space variational 2-RDM theory [Gidofalvi, G.; Mazziotti, D. A. J. Chem. Phys. 2008, 129, 134108] to the more general two-dimensional arrangement of rings--acene sheets--to study the relationship between geometry and electron correlation in PAHs. The acene-sheet calculations, if performed with conventional wave function methods, would require wave function expansions with as many as 1.5 × 10(17) configuration state functions. To measure electron correlation, we employ several RDM-based metrics: (i) natural-orbital occupation numbers, (ii) the 1-RDM von Neumann entropy, (iii) the correlation energy per carbon atom, and (iv) the squared Frobenius norm of the cumulant 2-RDM. The results confirm a trend of increasing polyradical character with increasing molecular size previously observed in linear PAHs and reveal a corresponding trend in two-dimensional (arch-shaped) PAHs. Furthermore, in PAHs of similar size they show significant variations in correlation with geometry. PAHs with the strictly linear geometry (chains) exhibit more electron correlation than PAHs with nonlinear geometries (sheets).

摘要

多环芳烃 (PAHs) 是一类在医学、燃烧化学和材料科学等多个科学领域具有重要意义的有机分子。PAHs 中离域的π-轨道系统需要高度精确的电子结构方法来捕捉强电子相关。处理 PAHs 中的相关性一直具有挑战性,原因有二:(i) 传统的强相关波函数方法由于在强相关轨道数量上呈指数级增长而不适用,(ii) 替代方法,如密度矩阵重整化群和变分双电子约化密度矩阵 (2-RDM) 方法,也不适用于线性并苯链之外。在本文中,我们将从活性空间变分 2-RDM 理论[Gidofalvi, G.;Mazziotti, D. A. J. Chem. Phys. 2008, 129, 134108]中得到的早期结果扩展到更一般的二维环排列——并苯片层——以研究 PAHs 中几何形状和电子相关性之间的关系。如果用传统的波函数方法进行并苯片层计算,所需的波函数展开将多达 1.5×10(17)个组态态函数。为了测量电子相关性,我们采用了几种基于 RDM 的指标:(i) 自然轨道占据数,(ii) 1-RDM 冯·诺依曼熵,(iii) 每个碳原子的相关能量,以及 (iv) 关联 2-RDM 的福罗贝尼乌斯范数的平方。结果证实了在线性 PAHs 中先前观察到的分子尺寸增大导致多自由基特征增加的趋势,并揭示了二维 (拱形) PAHs 中的相应趋势。此外,在相似大小的 PAHs 中,它们显示出与几何形状相关的显著变化。具有严格线性几何形状 (链) 的 PAHs 比具有非线性几何形状 (片) 的 PAHs 具有更多的电子相关性。

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