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非血红素铁(IV)-氧配合物对 C-H 键的活化:通过耦合 EDXAS/UV-Vis 多元分析得到的机理证据。

Activation of C-H bonds by a nonheme iron(IV)-oxo complex: mechanistic evidence through a coupled EDXAS/UV-Vis multivariate analysis.

机构信息

Dipartimento di Chimica, Università di Roma "La Sapienza", P.le A. Moro 5, 00185 Roma, Italy.

Dipartimento di Chimica, Università degli Studi di Torino, Via P. Giuria 7, 10125 Torino, Italy and The Smart Materials Research Institute, Southern Federal University, 344090 Sladkova 178/24 Rostov-on-Don, Russia.

出版信息

Phys Chem Chem Phys. 2021 Jan 21;23(2):1188-1196. doi: 10.1039/d0cp04304d.

Abstract

The understanding of reactive processes involving organic substrates is crucial to chemical knowledge and requires multidisciplinary efforts for its advancement. Herein, we apply a combined multivariate, statistical and theoretical analysis of coupled time-resolved X-ray absorption (XAS)/UV-Vis data to obtain detailed mechanistic information for on the C-H bond activation of 9,10-dihydroanthracene (DHA) and diphenylmethane (Ph2CH2) by the nonheme FeIV-oxo complex [N4Py·FeIV(O)]2+ (N4Py = N,N-bis(2-pyridylmethyl)-N-bis(2-pyridyl)methylamine) in CH3CN at room temperature. Within this approach, we determine the number of key chemical species present in the reaction mixtures and derive spectral and concentration profiles for the reaction intermediates. From the quantitative analysis of the XAS spectra the transient intermediate species are structurally determined. As a result, it is suggested that, while DHA is oxidized by [N4Py·FeIV(O)]2+ with a hydrogen atom transfer-electron transfer (HAT-ET) mechanism, Ph2CH2 is oxidized by the nonheme iron-oxo complex through a HAT-radical dissociation pathway. In the latter process, we prove that the intermediate FeIII complex [N4Py·FeIII(OH)]2+ is not able to oxidize the diphenylmethyl radical and we provide its structural characterization in solution. The employed combined experimental and theoretical strategy is promising for the spectroscopic characterization of transient intermediates as well as for the mechanistic investigation of redox chemical transformations on the second to millisecond time scales.

摘要

理解涉及有机底物的反应过程对于化学知识至关重要,需要多学科的努力来推进其发展。在此,我们应用了结合多元统计和理论分析的瞬态时间分辨 X 射线吸收(XAS)/紫外-可见(UV-Vis)数据,以获得室温下非血红素 FeIV-氧配合物[N4Py·FeIV(O)]2+(N4Py=N,N-双(2-吡啶基甲基)-N,N-双(2-吡啶基)甲基胺)对 9,10-二氢蒽(DHA)和二苯甲烷(Ph2CH2)的 C-H 键活化的详细反应机制信息。在这种方法中,我们确定了反应混合物中存在的关键化学物质的数量,并为反应中间体推导了光谱和浓度分布。通过对 XAS 光谱的定量分析,确定了瞬态中间物种的结构。结果表明,虽然 DHA 被[N4Py·FeIV(O)]2+通过氢原子转移-电子转移(HAT-ET)机制氧化,但 Ph2CH2 是通过非血红素铁-氧配合物通过 HAT-自由基解离途径氧化的。在后一过程中,我们证明了中间态 FeIII 配合物[N4Py·FeIII(OH)]2+不能氧化二苯甲基自由基,并提供了其在溶液中的结构特征。所采用的组合实验和理论策略有望用于瞬态中间体的光谱表征以及在第二至毫秒时间尺度上的氧化还原化学转化的机理研究。

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