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综合分子轨道的化学反应分析图:反应轨道能量图。

Diagrams for comprehensive molecular orbital-based chemical reaction analyses: reactive orbital energy diagrams.

机构信息

Fuel Cell Nanomaterials Center, University of Yamanashi, Kofu 400-0021, Japan.

出版信息

Phys Chem Chem Phys. 2018 May 23;20(20):14211-14222. doi: 10.1039/c8cp00461g.

DOI:10.1039/c8cp00461g
PMID:29761183
Abstract

Reactive orbital energy diagrams are presented as a tool for comprehensively performing orbital-based reaction analyses. The diagrams rest on the reactive orbital energy theory, which is the expansion of conceptual density functional theory (DFT) to an orbital energy-based theory. The orbital energies on the intrinsic reaction coordinates of fundamental reactions are calculated by long-range corrected DFT, which is confirmed to provide accurate orbital energies of small molecules, combining with a van der Waals (vdW) correlation functional, in order to examine the vdW effect on the orbital energies. By analysing the reactions based on the reactive orbital energy theory using these accurate orbital energies, it is found that vdW interactions significantly affect the orbital energies in the initial reaction processes and that more than 70% of reactions are determined to be initially driven by charge transfer, while the remaining structural deformation (dynamics)-driven reactions are classified into identity, cyclization and ring-opening, unimolecular dissociation, and H2 reactions. The reactive orbital energy diagrams, which are constructed using these results, reveal that reactions progress so as to delocalize the occupied reactive orbitals, which are determined as contributing orbitals and are usually not HOMOs, by hybridizing the unoccupied reactive orbitals, which are usually not LUMOs. These diagrams also raise questions about conventional orbital-based diagrams such as frontier molecular orbital diagrams, even for the well-established interpretation of Diels-Alder reactions.

摘要

呈现反应轨道能量图作为全面进行基于轨道的反应分析的工具。这些图基于反应轨道能量理论,该理论是概念密度泛函理论(DFT)扩展到基于轨道能量的理论。基本反应的固有反应坐标上的轨道能通过长程校正 DFT 计算,该方法与范德华(vdW)相关泛函相结合,被证实可以提供小分子的准确轨道能,以检验 vdW 对轨道能的影响。通过使用这些准确的轨道能,基于反应轨道能量理论分析反应,发现 vdW 相互作用显著影响初始反应过程中的轨道能,超过 70%的反应最初是由电荷转移驱动的,而剩余的结构变形(动力学)驱动的反应分为同面、环化和开环、单分子离解和 H2 反应。使用这些结果构建的反应轨道能量图表明,反应进展以便通过杂化未占据的反应轨道使占据的反应轨道(确定为贡献轨道,通常不是 HOMO)离域,这些未占据的反应轨道通常不是 LUMO。这些图还提出了关于传统基于轨道的图的问题,如前沿分子轨道图,即使对于 Diels-Alder 反应的既定解释也是如此。

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