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负责氢键超分子聚合物中协同作用和环均等化的σ电子。

σ-Electrons Responsible for Cooperativity and Ring Equalization in Hydrogen-Bonded Supramolecular Polymers.

作者信息

de Azevedo Santos Lucas, Cesario Diego, Vermeeren Pascal, van der Lubbe Stephanie C C, Nunzi Francesca, Fonseca Guerra Célia

机构信息

Department of Theoretical Chemistry, Amsterdam Institute for Molecular and Life Sciences (AIMMS) Amsterdam Center for Multiscale Modeling (ACMM), Vrije Universiteit Amsterdam, De Boelelaan 1083, 1081, HV Amsterdam, The Netherlands.

Department of Chemistry, Biology and Biotechnology, University of Perugia, Via Elce di Sotto 8, I-06123, Perugia, Italy.

出版信息

Chempluschem. 2021 Oct 19;87(2):e202100436. doi: 10.1002/cplu.202100436.

Abstract

We have quantum chemically analyzed the cooperative effects and structural deformations of hydrogen-bonded urea, deltamide, and squaramide linear chains using dispersion-corrected density functional theory at BLYP-D3(BJ)/TZ2P level of theory. Our purpose is twofold: (i) reveal the bonding mechanism of the studied systems that lead to their self-assembly in linear chains; and (ii) rationalize the C-C bond equalization in the ring moieties of deltamide and squaramide upon polymerization. Our energy decomposition and Kohn-Sham molecular orbital analyses reveal cooperativity in all studied systems, stemming from the charge separation within the σ-electronic system by charge transfer from the carbonyl oxygen lone pair donor orbital of one monomer towards the σ* N-H antibonding acceptor orbital of the neighboring monomer. This key orbital interaction causes the C=O bonds to elongate, which, in turn, results in the contraction of the adjacent C-C single bonds that, ultimately, makes the ring moieties of deltamide and squaramide to become more regular. Notably, the π-electron delocalization plays a much smaller role in the total interaction between the monomers in the chain.

摘要

我们使用色散校正密度泛函理论,在BLYP-D3(BJ)/TZ2P理论水平下,对氢键连接的尿素、δ-酰胺和方酰胺线性链的协同效应和结构变形进行了量子化学分析。我们的目的有两个:(i)揭示导致所研究体系在线性链中自组装的键合机制;(ii)合理化δ-酰胺和方酰胺聚合时环部分中碳-碳键的均等化。我们的能量分解和Kohn-Sham分子轨道分析揭示了所有研究体系中的协同性,这源于σ电子体系内的电荷分离,即电荷从一个单体的羰基氧孤对供体轨道转移到相邻单体的σ* N-H反键受体轨道。这种关键的轨道相互作用导致C=O键伸长,进而导致相邻的C-C单键收缩,最终使δ-酰胺和方酰胺的环部分变得更加规则。值得注意的是,π电子离域在链中单体之间的总相互作用中所起的作用要小得多。

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