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钯(II)二甲基配合物的有氧氧化导致钯(III)中间体中乙烷的选择性消除。

The aerobic oxidation of a Pd(II) dimethyl complex leads to selective ethane elimination from a Pd(III) intermediate.

机构信息

Department of Chemistry, Washington University, One Brookings Drive, St. Louis, Missouri 63130-4899, USA.

出版信息

J Am Chem Soc. 2012 Feb 1;134(4):2414-22. doi: 10.1021/ja210841f. Epub 2012 Jan 20.

Abstract

Oxidation of the Pd(II) complex (N4)Pd(II)Me(2) (N4 = N,N'-di-tert-butyl-2,11-diaza3.3pyridinophane) with O(2) or ROOH (R = H, tert-butyl, cumyl) produces the Pd(III) species (N4)Pd(III)Me(2), followed by selective formation of ethane and the monomethyl complex (N4)Pd(II)Me(OH). Cyclic voltammetry studies and use of 5,5-dimethyl-1-pyrroline-N-oxide (DMPO) as a spin trap suggest an inner-sphere mechanism for (N4)Pd(II)Me(2) oxidation by O(2) to generate a Pd(III)-superoxide intermediate. In addition, reaction of (N4)Pd(II)Me(2) with cumene hydroperoxide involves a heterolytic O-O bond cleavage, implying a two-electron oxidation of the Pd(II) precursor and formation of a transient Pd(IV) intermediate. Mechanistic studies of the C-C bond formation steps and crossover experiments are consistent with a nonradical mechanism that involves methyl group transfer and transient formation of a Pd(IV) species. Moreover, the (N4)Pd(II)Me(OH) complex formed upon ethane elimination reacts with weakly acidic C-H bonds of acetone and terminal alkynes, leading to formation of a new Pd(II)-C bond. Overall, this study represents the first example of C-C bond formation upon aerobic oxidation of a Pd(II) dimethyl complex, with implications in the development of Pd catalysts for aerobic oxidative coupling of C-H bonds.

摘要

Pd(II) 配合物(N4)Pd(II)Me(2)(N4=N,N'-二-叔丁基-2,11-二氮杂3.3吡啶并环烷)与 O(2) 或 ROOH(R=H,叔丁基,枯基)氧化生成 Pd(III)物种[(N4)Pd(III)Me(2)]+,随后选择性地形成乙烷和单甲基配合物(N4)Pd(II)Me(OH)。循环伏安研究和使用 5,5-二甲基-1-吡咯啉-N-氧化物(DMPO)作为自旋捕获剂表明,(N4)Pd(II)Me(2) 被 O(2)氧化生成 Pd(III)-超氧化物中间体的反应是内球机制。此外,(N4)Pd(II)Me(2)与枯基过氧化氢的反应涉及异裂 O-O 键断裂,这意味着 Pd(II)前体的两电子氧化和瞬态 Pd(IV)中间体的形成。C-C 键形成步骤的机理研究和交叉实验与涉及甲基转移和瞬态形成 Pd(IV)物种的非自由基机制一致。此外,乙烷消除形成的(N4)Pd(II)Me(OH)配合物与丙酮和末端炔烃的弱酸性 C-H 键反应,导致形成新的 Pd(II)-C 键。总的来说,这项研究代表了在 Pd(II)二甲基配合物有氧氧化条件下形成 C-C 键的首例,这对开发用于有氧氧化偶联 C-H 键的 Pd 催化剂具有重要意义。

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