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H优化在二酮吡咯并吡咯分子间相互作用和电荷转移积分计算中的作用

Role of H-Optimization in the Computed Intermolecular Interactions and Charge-Transfer Integrals in Diketopyrrolopyrroles.

作者信息

Calvo-Castro Jesus, Kennedy Alan R, McHugh Callum J

机构信息

School of Life and Medical Sciences , University of Hertfordshire , Hatfield AL10 9AB , U.K.

Department of Pure & Applied Chemistry , University of Strathclyde , Glasgow G1 1XL , U.K.

出版信息

J Phys Chem A. 2019 Apr 11;123(14):3185-3193. doi: 10.1021/acs.jpca.9b01275. Epub 2019 Mar 29.

Abstract

Small organic conjugated systems displaying one-dimensional stacking motifs in the solid state that facilitate charge propagation are highly desirable. Noncovalent interactions, although weak, can synergistically provide those supramolecular architectures with large binding energies and associated thermal integrity. Amongst the plethora of intermolecular interactions contributing toward the overall lattice energy and stability of the charge-propagation supramolecular architectures, H-bonding interactions are well-known to play a pivotal role. Despite their critical contribution, the positions of hydrogen atoms in X-ray crystallographic data are parameterized, which can lead to significant changes in the computed intermolecular interactions. Herein, we report for the first time an analysis of the role that the optimization of the H atoms in X-ray structures has in the computed intermolecular interactions energies in diketopyrrolopyrroles (DPPs). A large dataset comprising 94 dimer pairs from 19 different DPP-based systems, including three pigment analogues, was employed. In total, more than 1400 H-X chemical bonds were considered and optimized using the M06-2X density functional at the 6-311G(d) level. Intermolecular interactions were computed for the H-optimized geometries and compared to those from nonoptimized counterparts. We report that in 35 out of the 94 dimer pairs investigated (37%), the computed intermolecular interactions were at least 2.5 kJ mol larger on progression to the H-optimized geometries. In turn, lower computed values were yielded upon H-optimization computed for 8 out of the 94 dimer pairs (8%), with one case exhibiting a difference greater than 2.5 kJ mol. In line with the negligible changes to electron density and wavefunction overlap, the computed changes on the transfer integrals for the hole and electron were always lower than 1 kJ mol. The observed changes to computed intermolecular interactions can play a critical role in determining the thermal integrity of the supramolecular structures and charge propagation channels, and thus in the absence of neutron diffraction data, H atoms should be optimized prior to computation. We envisage that the results herein will be of interest to the extensive scientific community devoted to the understanding of intermolecular interactions in organic conjugated systems and the realization of superior charge-transfer-mediating materials, and given the plethora of intermolecular interactions investigated, the results are not solely limited to DPP-based architectures.

摘要

非常需要在固态中呈现一维堆积模式以促进电荷传播的小型有机共轭体系。非共价相互作用虽然较弱,但可以协同为那些超分子结构提供较大的结合能和相关的热稳定性。在众多有助于电荷传播超分子结构的整体晶格能量和稳定性的分子间相互作用中,氢键相互作用起着关键作用。尽管它们有重要贡献,但X射线晶体学数据中氢原子的位置是参数化的,这可能导致计算出的分子间相互作用发生显著变化。在此,我们首次报告了对X射线结构中氢原子优化在计算二酮吡咯并吡咯(DPPs)分子间相互作用能方面所起作用的分析。使用了一个包含来自19个不同基于DPP的体系(包括三种颜料类似物)的94个二聚体对的大型数据集。总共考虑并使用M06 - 2X密度泛函在6 - 311G(d)水平上优化了1400多个H - X化学键。计算了氢原子优化后的几何结构的分子间相互作用,并与未优化对应物的相互作用进行比较。我们报告称,在所研究的94个二聚体对中的35个(37%)中,在转变为氢原子优化后的几何结构时,计算出的分子间相互作用至少大2.5 kJ/mol。反过来,在94个二聚体对中的8个(8%)进行氢原子优化计算时得到了较低的值,其中一个案例的差异大于2.5 kJ/mol。与电子密度和波函数重叠的可忽略变化一致,计算出的空穴和电子转移积分的变化始终低于1 kJ/mol。观察到的计算分子间相互作用的变化在确定超分子结构和电荷传播通道的热稳定性方面可能起着关键作用,因此在没有中子衍射数据的情况下,在计算之前应优化氢原子。我们设想本文的结果将引起致力于理解有机共轭体系中分子间相互作用以及实现卓越电荷转移介导材料的广大科学界的兴趣,并且鉴于研究了众多分子间相互作用,结果不仅限于基于DPP的结构。

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