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Experimental and computational studies on the reactivity and binding mode of thiophene with N-heterocyclic carbene iridium complexes

机译:噻吩与N-杂环卡宾铱配合物的反应性和结合方式的实验和计算研究

摘要

The reactivity of thiophene (T), 2-methylthiophene (2-MeT), and benzothiophene (BT) with [Ir(cod)(IPr)(L)]BF complexes (L = acetone (1), pyridine (2) or dimethylphenylphosphine (3); IPr = 1,3-bis(2,6-diisopropylphenyl)imidazol-2-ylidene) in the presence of molecular hydrogen has been investigated. Under these conditions the 1,5-cyclooctadiene ligand is hydrogenated to cyclooctane, which renders an unsaturated species (Ir-IPr-L) able to coordinate the thiophene moiety. The coordination mode of T, 2-MeT, and BT depends on the nature of the substrate and the ligand trans to the IPr (L). The reaction of 1 with T and 2-MeT leads to dissociation of the acetone ligand to afford the complexes [Ir(H)(IPr)(η--T)]BF (4) and [Ir(H)(IPr)(η--2-MeT)(η-S-2-MeT)]BF (5), respectively, but no stable complex is observed on reaction with BT. Analogously to 1, complex 2 does not give a stable complex on reaction with BT, while reaction with 2-MeT yields complex 5 again. Conversely, reaction with T affords a mixture of complexes, [Ir(H)(IPr)(η--T)(Py)]BF (6) and [Ir(H)(IPr)(η-S-T)(Py)]BF (6′), both featuring a coordinated pyridine ligand. The reaction of 3 with T, 2-MeT, and BT yields in all cases η-S complexes, namely [Ir(H)(IPr)(η-S-T)(PPhMe)]BF (7), [Ir(H)(IPr)(η-S-2-MeT)(PPhMe)]BF (8) in equilibrium with [Ir(H)(IPr)(η-S-2-MeT)(PPhMe)]BF (8′), and [Ir(H)(IPr)(η-S-BT)(PPhMe)]BF (9). Finally, DFT calculations were employed to rationalize the coordination modes of T, 2-MeT, and BT, as well as the tendency of these complexes to undergo hydrogenation instead of hydrogenolysis of the thiophene moiety under catalytic conditions.
机译:噻吩(T),2-甲基噻吩(2-MeT)和苯并噻吩(BT)与[Ir(cod)(IPr)(L)] BF配合物(L =丙酮(1),吡啶(2)或已研究了在分子氢存在下的二甲基苯基膦(3); IPr = 1,3-双(2,6-二异丙基苯基)咪唑-2-亚丙基)。在这些条件下,将1,5-环辛二烯配体氢化成环辛烷,这使不饱和物质(Ir-IPr-L)能够配位噻吩部分。 T,2-MeT和BT的配位方式取决于底物的性质以及配体向IPr(L)的转化。 1与T和2-MeT的反应导致丙酮配体解离,得到配合物[Ir(H)(IPr)(η--T)] BF(4)和[Ir(H)(IPr)( η--2-MeT)(η-S-2-MeT)] BF(5),但在与BT反应时未观察到稳定的络合物。与1相似,配合物2在与BT反应时不会产生稳定的配合物,而与2-MeT反应则再次产生配合物5。相反,与T的反应提供了[Ir(H)(IPr)(η--T)(Py)] BF(6)和[Ir(H)(IPr)(η-ST)(Py) ] BF(6'),两者均具有配位吡啶配体。在所有情况下,3与T,2-MeT和BT的反应都会生成η-S络合物,即[Ir(H)(IPr)(η-ST)(PPhMe)] BF(7),[Ir(H) (IPr)(η-S-2-MeT)(PPhMe)] BF(8)与[Ir(H)(IPr)(η-S-2-MeT)(PPhMe)] BF(8')处于平衡状态,和[Ir(H)(IPr)(η-S-BT)(PPhMe)] BF(9)。最后,采用DFT计算来合理化T,2-MeT和BT的配位模式,以及这些配合物在催化条件下发生氢化而不是噻吩部分氢解的趋势。

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