Yung Cathleen M, Skaddan Marc B, Bergman Robert G
Contribution from Pfizer Global Research and Development, Pfizer Inc., 301 Henrietta Street, Kalamazoo, MI 49007, USA.
J Am Chem Soc. 2004 Oct 13;126(40):13033-43. doi: 10.1021/ja046825g.
A mechanistic study of the stoichiometric and catalytic H/D exchange reactions involving cationic iridium complexes is presented. Strong evidence suggests that both stoichiometric and catalytic reactions proceed via a monohydrido-iridium species. Stoichiometric deuterium incorporation reactions introduce multiple deuterium atoms into the organic products when aryliridium compounds CpPMe(3)Ir(C(6)H(4)X)(OTf) (X = H, o-CH(3), m-CH(3), p-CH(3)) react with D(2). Multiple deuteration occurs at the unhindered positions (para and meta) of toluene, when X = CH(3). The multiple-deuteration pathway is suppressed in the presence of an excess of the coordinating ligand, CH(3)CN. The compound CpPMe(3)IrH(OTf) (1-OTf) is observed in low-temperature, stoichiometric experiments to support a monohydrido-iridium intermediate that is responsible for catalyzing multiple deuteration in the stoichiometric system. When paired with acetone-d(6)(), [CpPMe(3)IrH(3)][OTf] (4) catalytically deuterates a wide range of substrates with a variety of functional groups. Catalyst 4 decomposes to [CpPMe(3)Ir(eta(3)-CH(2)C(OH)CH(2))][OTf] (19) in acetone and to [CpPMe(3)IrH(CO)][OTf] (1-CO) in CH(3)OH. The catalytic H/D exchange reaction is not catalyzed by simple H(+) transfer, but instead proceeds by a reversible C-H bond activation mechanism.
本文介绍了涉及阳离子铱配合物的化学计量和催化氢/氘交换反应的机理研究。有力证据表明,化学计量和催化反应均通过单氢铱物种进行。当芳基铱化合物CpPMe(3)Ir(C(6)H(4)X)(OTf)(X = H、邻-CH(3)、间-CH(3)、对-CH(3))与D(2)反应时,化学计量的氘掺入反应会将多个氘原子引入有机产物中。当X = CH(3)时,甲苯的未受阻位置(对位和间位)会发生多次氘代。在过量配位配体CH(3)CN存在下,多氘代途径受到抑制。在低温化学计量实验中观察到化合物CpPMe(3)IrH(OTf)((1 - OTf)),以支持单氢铱中间体,该中间体负责催化化学计量体系中的多次氘代。当与丙酮-d(6)配对时,[CpPMe(3)IrH(3)][OTf]((4))能催化多种具有不同官能团的底物进行氘代反应。催化剂(4)在丙酮中分解为[CpPMe(3)Ir(η(3)-CH(2)C(OH)CH(2))][OTf]((19)),在CH(3)OH中分解为[CpPMe(3)IrH(CO)][OTf]((1 - CO))。催化氢/氘交换反应不是由简单的H(+)转移催化的,而是通过可逆的C - H键活化机制进行的。