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铁配合物(EE)Fe(CO)(CNAr)(EE = BF、CO、N、CN或NO)的稳定性、电子结构和键合性质

Stabilities, Electronic Structures, and Bonding Properties of Iron Complexes (EE)Fe(CO)(CNAr) (EE=BF, CO, N, CN, or NO).

作者信息

Pei Gerui, Zhao Pei, Xu Song, Zhao Xintian, Kong Chuncai, Yang Zhimao, Ehara Masahiro, Yang Tao

机构信息

MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter, School of Physics, Xi'an Jiaotong University.

Research Center for Computational Science, Institute for Molecular Science Nishigonaka 38 Myodaiji, Okazaki, 444-8585, Japan.

出版信息

ChemistryOpen. 2020 Nov 18;9(11):1195-1201. doi: 10.1002/open.202000248. eCollection 2020 Nov.

Abstract

The coordination of 10-electron diatomic ligands (BF, CO N) to iron complexes Fe(CO)(CNAr) [Ar=2,6-(2,4,6-(-propyl)CH)CH] have been realized in experiments very recently (, , , 1203-1205). Herein, the stability, electronic structures, and bonding properties of (EE)Fe-(CO)(CNAr) (EE=BF, CO, N, CN, NO) were studied using density functional (DFT) calculations. The ground state of all those molecules is singlet and the calculated geometries are in excellent agreement with the experimental values. The natural bond orbital analysis revealed that Fe is negatively charged while E possesses positive charges. By employing the energy decomposition analysis, the bonding nature of the EE-Fe(CO)(CNAr) bond was disclosed to be the classic dative bond EE→Fe(CO)(CNAr) rather than the electron-sharing double bond. More interestingly, the bonding strength between BF and Fe(CO)(CNAr) is much stronger than that between CO (or N) and Fe(CO)(CNAr), which is ascribed to the better σ-donation and π back-donations. However, the orbital interactions in CN→Fe(CO)(CNAr) and NO→Fe(CO)(CNAr) mainly come from σ-donation and π back-donation, respectively. The different contributions from σ donation and π donation for different ligands can be well explained by using the energy levels of EE and Fe(CO)(CNAr) fragments.

摘要

最近在实验中已经实现了10电子双原子配体(BF、CO、N)与铁配合物Fe(CO)(CNAr) [Ar = 2,6-(2,4,6-(-丙基)CH)CH] 的配位(,,,1203 - 1205)。在此,使用密度泛函(DFT)计算研究了(EE)Fe-(CO)(CNAr)(EE = BF、CO、N、CN、NO)的稳定性、电子结构和键合性质。所有这些分子的基态都是单重态,计算得到的几何结构与实验值非常吻合。自然键轨道分析表明Fe带负电荷而E带正电荷。通过能量分解分析,揭示了EE - Fe(CO)(CNAr)键的键合本质是经典的配位键EE→Fe(CO)(CNAr),而不是电子共享双键。更有趣的是,BF与Fe(CO)(CNAr)之间的键合强度比CO(或N)与Fe(CO)(CNAr)之间的键合强度强得多,这归因于更好的σ给予和π反馈。然而,CN→Fe(CO)(CNAr)和NO→Fe(CO)(CNAr)中的轨道相互作用分别主要来自σ给予和π反馈。使用EE和Fe(CO)(CNAr)片段的能级可以很好地解释不同配体在σ给予和π给予方面的不同贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/08ea/7673221/48eca4c481e5/OPEN-9-1195-g001.jpg

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