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通过O对[(N4Py)Fe(II)]激活有机过酸的干扰揭示的一种瞬态、高反应性的Fe(IV)=O物种。

A Transient, Highly Reactive Fe(IV)=O Species Revealed Through the Interference by O in the Activation of Organic Peracids by [(N4Py)Fe(II)].

作者信息

Di Berto Mancini Marika, de Roo C Maurits, Sardjan Andy S, Hage Ronald, Olivo Giorgio, Lanzalunga Osvaldo, Swart Marcel, Browne Wesley R

机构信息

Stratingh Institute for Chemistry, Faculty of Science and Engineering, University of Groningen, Nijenborgh 3, Groningen 9474AG, Netherlands.

Dipartimento di Chimica and Istituto CNR per i Sistemi Biologici (ISB-CNR), Università di Roma "La Sapienza", P.le A. Moro, 5, Rome I-00185, Italy.

出版信息

ACS Catal. 2025 Apr 21;15(9):7482-7495. doi: 10.1021/acscatal.5c00706. eCollection 2025 May 2.

Abstract

Biomimetic models of high-valent species relevant to those formed by the activation of O by nonheme iron enzymes are essential for understanding reactivity. In synthetic complexes, oxidants such as peroxides and peroxyacids rather than O, are used to generate these species. However, although O is not the terminal oxidant in these models, its presence in reaction mixtures can negatively impact the outcome of catalytic reactions. In this report, the origin of this impact is elucidated using the reaction of the nonheme iron complex [(N4Py)Fe(II)(CHCN)] (, N4Py = -bis(2-pyridylmethyl)--bis(2-pyridyl)methylamine) with phenyl peracetic acid. We show that the speciation of the catalyst is sensitive to changes in composition by monitoring reaction progress using multiple spectroscopic techniques (UV/vis, Raman, FTIR, luminescence spectroscopy) concurrently to track changes in concentrations of the iron complexes, organic compounds, and gases. We elucidate the fundamental role played by molecular oxygen in the observed progress of the reactions, affecting the product distribution as expected, but also driving the system toward the accumulation of Fe(IV)=O species by scavenging intermediate benzyl radicals. These reactions influence the operation of a Fe(II)/Fe(IV) catalytic cycle with the peracid. An unexpected outcome of the study is that the data strongly indicate the transient formation of a highly reactive iron species capable of oxidizing organic substrates (e.g., methanol to methanal) within the solvent cage. We show that it is this species that enables an Fe(II)/Fe(IV) catalytic cycle. These findings shed light on differences in the catalytic performance of biomimetic nonheme iron complexes compared to the enzymes that inspire them.

摘要

与非血红素铁酶激活氧所形成的高价物种相关的仿生模型对于理解反应活性至关重要。在合成配合物中,过氧化物和过氧酸等氧化剂而非氧气被用于生成这些物种。然而,尽管氧气在这些模型中不是终端氧化剂,但其在反应混合物中的存在会对催化反应的结果产生负面影响。在本报告中,利用非血红素铁配合物[(N4Py)Fe(II)(CHCN)](N4Py = -双(2-吡啶甲基)--双(2-吡啶基)甲胺)与苯过氧乙酸的反应阐明了这种影响的来源。我们通过同时使用多种光谱技术(紫外/可见光谱、拉曼光谱、傅里叶变换红外光谱、发光光谱)监测反应进程来跟踪铁配合物、有机化合物和气体浓度的变化,从而表明催化剂的物种形成对组成变化敏感。我们阐明了分子氧在观察到的反应进程中所起的基本作用,它如预期的那样影响产物分布,但也通过清除中间苄基自由基促使系统朝着Fe(IV)=O物种的积累方向发展。这些反应影响了与过酸的Fe(II)/Fe(IV)催化循环的运行。该研究的一个意外结果是,数据有力地表明在溶剂笼内瞬态形成了一种能够氧化有机底物(如将甲醇氧化为甲醛)的高反应活性铁物种。我们表明正是这种物种促成了Fe(II)/Fe(IV)催化循环。这些发现揭示了仿生非血红素铁配合物与激发它们的酶相比催化性能的差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2fdf/12054616/93a6c076a892/cs5c00706_0011.jpg

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