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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >A theoretical study on the reaction mechanism for the Bergman cyclization from the perspective of the electron localization function and catastrophe theory
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A theoretical study on the reaction mechanism for the Bergman cyclization from the perspective of the electron localization function and catastrophe theory

机译:从电子局域函数和突变理论的角度对伯格曼环化反应机理的理论研究

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摘要

The reaction mechanism associated with the Bergman cyclization of the (Z)-hexa-1,5-diyne-3-ene to render p-benzyne has been analyzed by means of a combined use of the electron localization function (ELF) and the catastrophe theory on the basis of density functional theory (DFT) calculations (B3LYP/6-31 G(d)). The complex electronic rearrangements of this reaction can be highlighted using this novel quantum mechanical perspective. Five domains of structural stability of the ELF occurring along the intrinsic reaction path as well as four catastrophes (fold-cusp-fold-cusp) responsible for the changes in the topology of the system have been identified. The multiple factors that occur along the intrinsic reaction coordinate path are presented and discussed in a consistent way. The topological analysis of ELF and catastrophe theory reveals that mechanical deformation of the C-1-C-1-C-3 unit and closed-shell repulsion between terminal acetylene groups lead to an early formation of diradicaloid character at C-2 and C-5 atoms. Immediately after the transition structure (TS) is reached, the open-shell-singlet biradical becomes stable. Meanwhile, C-1 and C-6 atoms are preparing to be covalently bonded; that will finally occur at a distance of 1.791 angstrom. In addition, a separation of the ELF into in-plane (sigma) and out-of-plane (pi) contributions allows us to discuss the aromaticity profiles; sigma-aromaticity appears in the vicinities of the TS, while pi-aromaticity takes place in the final stage of the reaction path, once the ring has been formed.
机译:(Z)-hexa-1,5-diyne-3-ene的Bergman环化反应生成p-benzyne的反应机理已通过结合使用电子定位功能(ELF)和大灾难进行了分析密度泛函理论(DFT)计算基础上的理论(B3LYP / 6-31 G(d))。使用这种新颖的量子力学观点,可以强调该反应的复杂电子重排。已经确定了沿固有反应路径发生的ELF的结构稳定性的五个域,以及负责系统拓扑结构变化的四个灾难(折叠-折叠-折叠)。沿着固有反应坐标路径发生的多个因素以一致的方式呈现和讨论。 ELF的拓扑分析和巨灾理论表明,C-1-C-1-C-3单元的机械变形和末端乙炔基之间的闭壳排斥力会导致C-2和C-的双自由基特征的早期形成5个原子达到过渡结构(TS)后,开壳-单双峰立即变得稳定。同时,C-1和C-6原子正在准备进行共价键连接;最终将在1.791埃的距离处发生。此外,将ELF分为面内(sigma)和面外(pi)两种成分,使我们可以讨论芳香度分布。一旦形成环,s-芳香族就会出现在TS附近,而pi-芳香会出现在反应路径的最后阶段。

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