Selective aromatic halogenation by a manganese compound I model: A mimic of chloroperoxidase

IF 6.1 1区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR
Lina Zhang, Steiny Russelisaac Premakumari, Maggie Ng, Jisheng Zhang, Yong-Min Lee, Shunichi Fukuzumi, Kyung-Bin Cho, Wonwoo Nam
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Abstract

A high-valent manganese(IV)-hydroxo porphyrin π-cation radical complex, [MnIV(OH)(Por)(OTf)]+ (a protonated manganese Compound I analogue), was studied in the halogenation of aromatic compounds. By replacing the triflate anion with Cl or Br, we were able to halogenate toluene with a high selectivity for C(sp2)–H bonds over C(sp3)–H bonds, such as chlorination with Cl or bromination with Br in the aromatic ring. We have also examined the halogenation of naphthalene and benzene derivatives with [MnIV(OH)(Por)(X)]+ (X = Cl and Br). In all of these reactions, halogenated products were formed dominantly and the source of the halogens in the products was found to be halides in the [MnIV(OH)(Por)(X)]+ complexes. In the absence of halides, naphthalene was found to undergo dimerization. Kinetic isotope effect (KIE) experiments on this reaction showed no isotopic effect in the halogenation reactions. DFT calculations on models with naphthalene substrate supported a mechanism involving an initial (rate-limiting) electron transfer from the substrate to [MnIV(OH)(Por)(OTf)]+, coupled by the Cl attachment to the C1 position of naphthalene radical cation. This picture was also supported by Marcus theory of outer-sphere electron transfer. The so-formed [MnIV(OH)(Por)(OTf)] (a manganese Compound II analogue) performed a hydrogen atom transfer from the C1 position of the substrate to form the chlorinated naphthalene and [MnIII(H2O)(Por)(OTf)]. DFT calculations showed that [MnIV(OH)(Por)(OTf)] can also perform direct OH-transfer to the substrate competitively, leaving open possibilities for side-reactions or alternative reactions in a different environment. This study provides a deeper understanding of chloroperoxidase-like reactions.
锰化合物的选择性芳香卤化I模型:氯过氧化物酶的模拟物
研究了一种高价锰(IV)-羟基卟啉π-阳离子自由基配合物[MnIV(OH)(Por+·)(OTf)]+(质子化锰化合物I类似物)在芳香化合物卤化反应中的作用。通过用Cl -或Br -取代三氟酸阴离子,我们能够使甲苯卤化,使C(sp2) - h键比C(sp3) - h键具有高选择性,例如芳香环中的Cl -氯化或Br -溴化。我们还研究了萘和苯衍生物与[MnIV(OH)(Por+·)(X)]+ (X = Cl -和Br -)的卤化反应。在所有这些反应中,卤化产物的形成占主导地位,产物中卤素的来源是[MnIV(OH)(Por+·)(X)]+配合物中的卤化物。在没有卤化物的情况下,发现萘发生二聚化反应。动力学同位素效应(KIE)实验表明,卤化反应中没有同位素效应。基于萘底物模型的DFT计算支持了一种机制,即从底物到[MnIV(OH)(Por+·)(OTf)]+的初始(限速)电子转移,与Cl -附着在萘自由基阳离子的C1位置相耦合。这一观点也得到了马库斯外球电子转移理论的支持。这样形成的[MnIII(OH)(Por)(OTf)](锰化合物II类似物)从底物的C1位置进行氢原子转移,形成氯化萘和[MnIII(H2O)(Por)(OTf)]。DFT计算表明,[MnIV(OH)(Por)(OTf)]也可以竞争性地将OH直接转移到底物,从而为不同环境下的副反应或替代反应留下了可能性。这项研究为氯过氧化物酶样反应提供了更深入的了解。
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
Inorganic Chemistry Frontiers
Inorganic Chemistry Frontiers CHEMISTRY, INORGANIC & NUCLEAR-
CiteScore
10.40
自引率
7.10%
发文量
587
审稿时长
1.2 months
期刊介绍: The international, high quality journal for interdisciplinary research between inorganic chemistry and related subjects
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