Intramolecular Oxo Atom Migration to the cis Thiolate Sulfur of an Fe-Oxo Intermediate.

IF 14.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Deesha D Malik, Shilpa Bhatia, Maike N Lundahl, Haley N Bautel, Dylan M Rogers, Werner Kaminsky, Julie A Kovacs
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Abstract

Herein, we show for the first time that thiolate ligands can play an important role in promoting 2e- oxo atom transfer with nonheme iron. We examine the mechanism of oxo atom transfer to a cis thiolate sulfur for two structurally related iron complexes using low-temperature kinetics, spectroscopic, and computational methods. Intermediate oxo atom donor adducts, FeOIAr, are spectroscopically characterized and shown to have electronic spectral, EPR, and Mössbauer parameters, and kinetic barriers dependent on the nature of the oxo atom donor. More stable adducts containing pyridine N-oxide (PNO) were crystallographically characterized and computationally optimized to establish optimum functionals and basis sets. Oxo atom transfer is shown both experimentally and computationally to involve a stepwise, as opposed to a concerted, mechanism. A new metastable intermediate is observed by low-temperature Mössbauer and ⊥-mode EPR after the Fe-OxIPh intermediate and prior to the final sulfenate Fe-OSR product. The DFT calculated minimum energy pathway is shown to contain a local minimum between the Fe-O2IPh adduct and Fe-S(R)O product. The DFT optimized geometric and electronic structure of this intermediate is shown to be consistent with an S = 1 Fe(IV)═O that is antiferromagnetically coupled to an S = 1/2 radical delocalized over the two cis thiolate-sulfurs, analogous to the electronic configuration of P450 Cmpd I. Radical character on the thiolate sulfur adjacent to the oxo is shown to facilitate trapping of the high-valent Fe-oxo as a η2-SO-Fe sulfenate complex.

铁-氧中间体分子内氧原子向顺式硫代硫的迁移。
在此,我们首次证明了硫酸盐配体在促进2e-氧原子与非血红素铁的转移中起重要作用。我们使用低温动力学、光谱和计算方法研究了两种结构相关的铁配合物的氧原子转移到顺式硫代硫的机制。中间氧原子给体加合物FeOIAr被光谱表征,并显示出具有电子光谱、EPR和Mössbauer参数,以及依赖于氧原子给体性质的动力学势垒。对含吡啶n -氧化物(pyridine N-oxide, PNO)的稳定加合物进行了晶体学表征和计算优化,以建立最佳官能团和基集。氧原子的转移在实验和计算上都表明是一个循序渐进的过程,而不是一个协调一致的过程。在fe - oxph中间体之后和最终硫酸盐Fe-OSR产物之前,通过低温Mössbauer和⊥模式EPR观察到一个新的亚稳中间体。DFT计算的最小能量途径显示在Fe-O2IPh加合物和Fe-S(R)O产物之间包含一个局部最小值。DFT优化后的中间体的几何和电子结构显示与S = 1 Fe(IV) = O相一致,该S = 1 Fe(IV) = O反铁磁偶联到两个顺式硫代硫上的S = 1/2离域自由基,类似于P450 Cmpd的电子构型。硫代硫上邻近氧的自由基特征显示有利于高价铁-氧作为η - 2- so -Fe硫酸盐络合物的捕获。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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