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sp3 C-O 键通过 C-H 键的氧化加成断裂。

Cleavage of sp3 C-O bonds via oxidative addition of C-H bonds.

机构信息

Department of Chemistry and Chemical Biology, Rutgers, The State University of New Jersey, New Brunswick, New Jersey 08903, USA.

出版信息

J Am Chem Soc. 2009 Nov 4;131(43):15627-9. doi: 10.1021/ja906930u.

Abstract

(PCP)Ir (PCP = kappa(3)-C(6)H(3)-2,6-CH(2)P(t-Bu)(2)) is found to undergo oxidative addition of the methyl-oxygen bond of electron-poor methyl aryl ethers, including methoxy-3,5-bis(trifluoromethyl)benzene and methoxypentafluorobenzene, to give the corresponding aryloxide complexes (PCP)Ir(CH(3))(OAr). Although the net reaction is insertion of the Ir center into the C-O bond, density functional theory (DFT) calculations and a significant kinetic isotope effect [k(CH(3))(OAr)/k(CD(3))(OAr) = 4.3(3)] strongly argue against a simple insertion mechanism and in favor of a pathway involving C-H addition and alpha-migration of the OAr group to give a methylene complex followed by hydride-to-methylene migration to give the observed product. Ethoxy aryl ethers, including ethoxybenzene, also undergo C-O bond cleavage by (PCP)Ir, but the net reaction in this case is 1,2-elimination of ArO-H to give (PCP)Ir(H)(OAr) and ethylene. DFT calculations point to a low-barrier pathway for this reaction that proceeds through C-H addition of the ethoxy methyl group followed by beta-aryl oxide elimination and loss of ethylene. Thus, both of these distinct C-O cleavage reactions proceed via initial addition of a C(sp(3))-H bond, despite the fact that such bonds are typically considered inert and are much stronger than C-O bonds.

摘要

(PCP)Ir(PCP=κ(3)-C(6)H(3)-2,6-CH(2)P(t-Bu)(2))被发现可以氧化加成缺电子的甲基芳基醚(包括间甲氧基-3,5-双(三氟甲基)苯和间甲氧五氟苯)的甲基-氧键,得到相应的芳氧基配合物(PCP)Ir(CH(3))(OAr)。尽管总反应是 Ir 中心插入 C-O 键,但密度泛函理论(DFT)计算和显著的动力学同位素效应[k(CH(3))(OAr)/k(CD(3))(OAr)=4.3(3)]强烈表明,这不是一个简单的插入机制,而是一个涉及 C-H 加成和 OAr 基团α迁移生成亚甲基配合物的途径,然后通过氢化物到亚甲基的迁移生成观察到的产物。乙氧基芳基醚,包括乙氧基苯,也可被(PCP)Ir 裂解 C-O 键,但在这种情况下,总反应是 ArO-H 的 1,2-消除,生成(PCP)Ir(H)(OAr)和乙烯。DFT 计算表明,这种反应有一条低能垒途径,通过乙氧基甲基的 C-H 加成,然后是β-芳氧基消除和乙烯的损失。因此,尽管 C(sp(3))-H 键通常被认为是惰性的,而且比 C-O 键强得多,但这两种截然不同的 C-O 裂解反应都是通过初始加成 C(sp(3))-H 键进行的。

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