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钯催化的不对称膦化反应。范围、机理及对映选择性的起源。

Palladium-catalyzed asymmetric phosphination. Scope, mechanism, and origin of enantioselectivity.

作者信息

Blank Natalia F, Moncarz Jillian R, Brunker Tim J, Scriban Corina, Anderson Brian J, Amir Omar, Glueck David S, Zakharov Lev N, Golen James A, Incarvito Christopher D, Rheingold Arnold L

机构信息

Contribution from the 6128 Burke Laboratory, Department of Chemistry, Dartmouth College, Hanover, New Hampshire 03755, USA.

出版信息

J Am Chem Soc. 2007 May 30;129(21):6847-58. doi: 10.1021/ja070225a. Epub 2007 May 3.

DOI:10.1021/ja070225a
PMID:17474744
Abstract

Asymmetric cross-coupling of aryl iodides (ArI) with secondary arylphosphines (PHMe(Ar'), Ar' = (2,4,6)-R3C6H2; R = i-Pr (Is), Me (Mes), Ph (Phes)) in the presence of the base NaOSiMe3 and a chiral Pd catalyst precursor, such as Pd((R,R)-Me-Duphos)(trans-stilbene), gave the tertiary phosphines PMe(Ar')(Ar) in enantioenriched form. Sterically demanding secondary phosphine substituents (Ar') and aryl iodides with electron-donating para substituents resulted in the highest enantiomeric excess, up to 88%. Phosphination of ortho-substituted aryl iodides required a Pd(Et-FerroTANE) catalyst but gave low enantioselectivity. Observations during catalysis and stoichiometric studies of the individual steps suggested a mechanism for the cross-coupling of PhI and PHMe(Is) (1) initiated by oxidative addition to Pd(0) yielding Pd((R,R)-Me-Duphos)(Ph)(I) (3). Reversible displacement of iodide by PHMe(Is) gave the cation [Pd((R,R)-Me-Duphos)(Ph)(PHMe(Is))][I] (4), which was isolated as the triflate salt and crystallographically characterized. Deprotonation of 4-OTf with NaOSiMe3 gave the phosphido complex Pd((R,R)-Me-Duphos)(Ph)(PMeIs) (5); an equilibrium between its diastereomers was observed by low-temperature NMR spectroscopy. Reductive elimination of 5 yielded different products depending on the conditions. In the absence of a trap, the unstable three-coordinate phosphine complex Pd((R,R)-Me-Duphos)(PMeIs(Ph)) (6) was formed. Decomposition of 5 in the presence of PhI gave PMeIs(Ph) (2) and regenerated 3, while trapping with phosphine 1 during catalysis gave Pd((R,R)-Me-Duphos)(PHMe(Is))2 (7), which reacted with PhI to give 3. Deprotonation of 1:1 or 1.4:1 mixtures of cations 4-OTf gave the same 6:1 ratio of enantiomers of PMeIs(Ph) (2), suggesting that the rate of P inversion in 5 was greater than or equal to the rate of reductive elimination. Kinetic studies of the first-order reductive elimination of 5 were consistent with a Curtin-Hammett-Winstein-Holness (CHWH) scheme, in which pyramidal inversion at the phosphido ligand was much faster than P-C bond formation. The absolute configuration of the phosphine (SP)-PMeIs(p-MeOC6H4) was determined crystallographically; NMR studies and comparison to the stable complex 5-Pt were consistent with an RP-phosphido ligand in the major diastereomer of the intermediate Pd((R,R)-Me-Duphos)(Ph)(PMeIs) (5). Therefore, the favored enantiomer of phosphine 2 appeared to be formed from the major diastereomer of phosphido intermediate 5, although the minor intermediate diastereomer underwent P-C bond formation about three times more rapidly. The effects of the diphosphine ligand, the phosphido substituents, and the aryl group on the ratio of diastereomers of the phosphido intermediates Pd(diphos*)(Ar)(PMeAr'), their rates of reductive elimination, and the formation of three-coordinate complexes were probed by low-temperature 31P NMR spectroscopy; the results were also consistent with the CHWH scheme.

摘要

在碱NaOSiMe₃和手性钯催化剂前体(如Pd((R,R)-Me-Duphos)(反式芪))存在下,芳基碘化物(ArI)与仲芳基膦(PHMe(Ar'),Ar' = (2,4,6)-R₃C₆H₂;R = i-Pr (Is),Me (Mes),Ph (Phes))进行不对称交叉偶联,得到对映体富集形式的叔膦PMe(Ar')(Ar)。空间位阻较大的仲膦取代基(Ar')和具有给电子对位取代基的芳基碘化物导致了最高的对映体过量,高达88%。邻位取代的芳基碘化物的膦化反应需要Pd(Et-FerroTANE)催化剂,但对映选择性较低。催化过程中的观察以及对各个步骤的化学计量研究表明了PhI和PHMe(Is) (1)交叉偶联的一种机理,该机理由Pd(0)的氧化加成引发,生成Pd((R,R)-Me-Duphos)(Ph)(I) (3)。PHMe(Is)对碘化物的可逆取代得到阳离子[Pd((R,R)-Me-Duphos)(Ph)(PHMe(Is))][I] (4),其作为三氟甲磺酸盐被分离并通过晶体学表征。用NaOSiMe₃对4-OTf进行去质子化得到磷化物配合物Pd((R,R)-Me-Duphos)(Ph)(PMeIs) (5);通过低温核磁共振光谱观察到其非对映异构体之间的平衡。5的还原消除根据条件产生不同的产物。在没有捕获剂的情况下,形成不稳定的三配位膦配合物Pd((R,R)-Me-Duphos)(PMeIs(Ph)) (6)。5在PhI存在下分解得到PMeIs(Ph) (2)并再生3,而在催化过程中用膦1捕获得到Pd((R,R)-Me-Duphos)(PHMe(Is))₂ (7),其与PhI反应得到3。阳离子4-OTf的1:1或1.4:1混合物的去质子化得到相同的6:1比例的PMeIs(Ph) (2)对映体,这表明5中P翻转的速率大于或等于还原消除的速率。对5的一级还原消除的动力学研究与Curtin-Hammett-Winstein-Holness(CHWH)机理一致,其中磷化物配体处的锥形翻转比P-C键形成快得多。通过晶体学确定了膦(SP)-PMeIs(p-MeOC₆H₄)的绝对构型;核磁共振研究以及与稳定配合物5-Pt的比较与中间体Pd((R,R)-Me-Duphos)(Ph)(PMeIs) (5)的主要非对映异构体中的RP-磷化物配体一致。因此,膦2的优势对映体似乎由磷化物中间体5的主要非对映异构体形成,尽管次要的中间体非对映异构体进行P-C键形成的速度快约三倍。通过低温³¹P核磁共振光谱研究了双膦配体、磷化物取代基和芳基对磷化物中间体Pd(双膦*)(Ar)(PMeAr')的非对映异构体比例、它们的还原消除速率以及三配位配合物形成的影响;结果也与CHWH机理一致。

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