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钴(III)-卡宾自由基途径合成取代 1H-茚

Co(III)-Carbene Radical Approach to Substituted 1H-Indenes.

机构信息

Homogeneous, Supramolecular and Bio-Inspired Catalysis (HomKat) Group, Van 't Hoff Institute for Molecular Sciences (HIMS), University of Amsterdam , Science Park 904, 1098 XH Amsterdam, The Netherlands.

出版信息

J Am Chem Soc. 2016 Jul 20;138(28):8968-75. doi: 10.1021/jacs.6b05434. Epub 2016 Jul 8.

Abstract

A new strategy for the catalytic synthesis of substituted 1H-indenes via metalloradical activation of o-cinnamyl N-tosyl hydrazones is presented, taking advantage of the intrinsic reactivity of a Co(III) carbene radical intermediate. The reaction uses readily available starting materials and is operationally simple, thus representing a practical method for the construction of functionalized 1H-indene derivatives. The cheap and easy to prepare low spin cobalt(II) complex [Co(II)(MeTAA)] (MeTAA = tetramethyltetraaza[14]annulene) proved to be the most active catalyst among those investigated, which demonstrates catalytic carbene radical reactivity for a nonporphyrin cobalt(II) complex, and for the first time catalytic activity of [Co(II)(MeTAA)] in general. The methodology has been successfully applied to a broad range of substrates, producing 1H-indenes in good to excellent yields. The metallo-radical catalyzed indene synthesis in this paper represents a unique example of a net (formal) intramolecular carbene insertion reaction into a vinylic C(sp(2))-H bond, made possible by a controlled radical ring-closure process of the carbene radical intermediate involved. The mechanism was investigated computationally, and the results were confirmed by a series of supporting experimental reactions. Density functional theory calculations reveal a stepwise process involving activation of the diazo compound leading to formation of a Co(III)-carbene radical, followed by radical ring-closure to produce an indanyl/benzyl radical intermediate. Subsequent indene product elimination involving a 1,2-hydrogen transfer step regenerates the catalyst. Trapping experiments using 2,2,6,6-tetra-methylpiperidine-1-oxyl (TEMPO) radical or dibenzoylperoxide (DBPO) confirm the involvement of cobalt(III) carbene radical intermediates. Electron paramagnetic resonance spectroscopic spin-trapping experiments using phenyl N-tert-butylnitrone (PBN) reveal the radical nature of the reaction.

摘要

一种通过 o-肉桂基 N-对甲苯磺酰腙的金属自由基活化来催化合成取代的 1H-茚的新策略被提出,该策略利用了 Co(III)卡宾自由基中间体的固有反应性。该反应使用易得的起始原料,操作简单,因此代表了构建功能化 1H-茚衍生物的实用方法。廉价且易于制备的低自旋钴(II)配合物 [Co(II)(MeTAA)](MeTAA = 四甲基四氮杂[14]轮烯)被证明是在所研究的配合物中最活跃的催化剂,它证明了非卟啉钴(II)配合物的催化卡宾自由基反应性,并且首次证明了 [Co(II)(MeTAA)] 的一般催化活性。该方法已成功应用于广泛的底物,以良好至优异的收率得到 1H-茚。本文报道的金属自由基催化茚合成代表了通过涉及的卡宾自由基中间体的受控自由基环闭过程,使乙烯基 C(sp(2))-H 键的净(形式)分子内卡宾插入反应成为可能的独特例子。该机理通过一系列支持性实验反应进行了计算研究,并得到了证实。密度泛函理论计算揭示了一个逐步过程,包括重氮化合物的活化导致形成 Co(III)-卡宾自由基,随后自由基环闭生成茚基/苄基自由基中间体。随后涉及 1,2-氢转移步骤的茚产物消除再生催化剂。使用 2,2,6,6-四甲基哌啶-1-氧自由基(TEMPO)自由基或二苯甲酰过氧化物(DBPO)的捕获实验证实了钴(III)卡宾自由基中间体的参与。使用苯基 N-叔丁基硝酮(PBN)的电子顺磁共振光谱自旋捕获实验揭示了反应的自由基性质。

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