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“S”取代对铁(IV)-氧杂环戊烷配合物 C-H 活化反应性的作用:计算研究。

Role of "S" Substitution on C-H Activation Reactivity of Iron(IV)-Oxo Cyclam Complexes: a Computational Investigation.

机构信息

School of Chemistry and Biochemistry, Thapar Institute of Engineering and Technology, Patiala 147004, Punjab, India.

出版信息

Inorg Chem. 2022 Sep 19;61(37):14582-14590. doi: 10.1021/acs.inorgchem.2c01504. Epub 2022 Sep 7.

Abstract

A comprehensive density functional theory (DFT) investigation has been presented in this article to address the role of equatorial sulfur ligation in C-H activation. A non-heme iron-oxo compound with four nitrogen atoms constituting the equatorially connected macrocyclic framework (represented as N) [Fe(IV)═O(THC)(CHCN)](THC = 1,4,8,11-tetrahydro1,4,8,11-tetraazacyclotetradecane) has been considered as the base compound. Other complexes have been anticipated by the sequential replacement of this nitrogen by sulfur, that is, N, NS, NS, NS, and S. Counterions, as always, have been considered to avoid the self-interaction error in DFT. Generally, the anti-conformers (with respect to equatorial N-H and Fe═O) turned out to be the most stable. It was found that with the enrichment of the equatorial sulfur atom, reactivity increases successively, that is, we get the trend N < NS < NS < NS < S Our investigations have also verified the available experimental results where it has been reported that NS is more reactive than N in their mixed conformation. In search of insights into this typical pattern of reactivity, the interplay of several factors has been recognized, such as the distortion energy which decreases for the transition states with the addition of sulfur; the spin density on the oxygen atom which increases implying that the radical character of abstractor increases on sulfur ligation; the energy of the electron acceptor orbital (the lowest unoccupied molecular orbital (σ*)) which decreases continuously with the sulfur substitution; and the triplet-quintet oxidant energy gap which decreases consistently with S enrichment in the equatorial position. The computational predictions reported here, if further validated by experiments, will definitely encourage the synthesis of sulfur-ligated bio-inspired complexes instead of the ones constituting nitrogen exclusively.

摘要

本文通过全面的密度泛函理论(DFT)研究,探讨了赤道硫配体在 C-H 活化中的作用。以具有四个氮原子构成赤道连接大环骨架的非血红素铁-氧合物[Fe(IV)═O(THC)(CHCN)](THC = 1,4,8,11-四氢-1,4,8,11-四氮杂环十四烷)作为基本化合物。通过逐步用硫替代该氮原子,预计会出现其他配合物,即 N、NS、NS、NS 和 S。与往常一样,为了避免 DFT 中的自相互作用错误,我们考虑了抗衡离子。通常,反构(相对于赤道 N-H 和 Fe═O)是最稳定的。研究发现,随着赤道硫原子的富集,反应性依次增加,即我们得到了 N < NS < NS < NS < S 的趋势。我们的研究还验证了可用的实验结果,其中已经报道 NS 在它们的混合构象中比 N 更具反应性。为了寻找对这种典型反应性模式的深入了解,已经认识到了几个因素的相互作用,例如过渡态的畸变能随着硫的添加而降低;氧原子上的自旋密度增加,这意味着在硫配位时,提取剂的自由基特征增加;电子受体轨道(最低未占分子轨道(σ*))的能量连续降低随着硫取代的进行;以及三重态-五重态氧化剂能量间隙随着赤道位置硫的富集而一致降低。如果这里报道的计算预测能够通过实验进一步验证,肯定会鼓励合成硫配位的仿生配合物,而不是仅由氮构成的配合物。

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