Mueller Jaime A, Sigman Matthew S
Department of Chemistry, University of Utah, 315 South 1400 East, Salt Lake City, Utah 84112, USA.
J Am Chem Soc. 2003 Jun 11;125(23):7005-13. doi: 10.1021/ja034262n.
The mechanistic details of the Pd(II)/(-)-sparteine-catalyzed aerobic oxidative kinetic resolution of secondary alcohols were elucidated, and the origin of asymmetric induction was determined. Saturation kinetics were observed for rate dependence on [(-)-sparteine]. First-order rate dependencies were observed for both the Pd((-)-sparteine)Cl(2) concentration and the alcohol concentration at high and low [(-)-sparteine]. The oxidation rate was inhibited by addition of (-)-sparteine HCl. At low [(-)-sparteine], Pd-alkoxide formation is proposed to be rate limiting, while at high [(-)-sparteine], beta-hydride elimination is proposed to be rate determining. These conclusions are consistent with the measured kinetic isotope effect of k(H)/k(D) = 1.31 +/- 0.04 and a Hammett rho value of -1.41 +/- 0.15 at high [(-)-sparteine]. Calculated activation parameters agree with the change in the rate-limiting step by increasing [(-)-sparteine] with DeltaH(++) = 11.55 +/- 0.65 kcal/mol, DeltaS(++) = -24.5 +/- 2.0 eu at low [(-)-sparteine], and DeltaH(++) = 20.25 +/- 0.89 kcal/mol, DeltaS() = -5.4 +/- 2.7 eu at high [(-)-sparteine]. At high [(-)-sparteine], the selectivity is influenced by both a thermodynamic difference in the stability of the diastereomeric Pd-alkoxides formed and a kinetic beta-hydride elimination to maximize asymmetric induction. At low [(-)-sparteine], the selectivity is influenced by kinetic deprotonation, resulting in lower k(rel) values. A key, nonintuitive discovery is that (-)-sparteine plays a dual role in this oxidative kinetic resolution of secondary alcohols as a chiral ligand on palladium and as an exogenous chiral base.
阐明了钯(II)/(-)-鹰爪豆碱催化仲醇的有氧氧化动力学拆分的机理细节,并确定了不对称诱导的起源。观察到速率对[(-)-鹰爪豆碱]的饱和动力学。在高和低[(-)-鹰爪豆碱]下,观察到钯((-)-鹰爪豆碱)Cl₂浓度和醇浓度均呈一级速率依赖性。加入(-)-鹰爪豆碱盐酸盐会抑制氧化速率。在低[(-)-鹰爪豆碱]下,提出钯醇盐的形成是速率限制步骤,而在高[(-)-鹰爪豆碱]下,提出β-氢消除是速率决定步骤。这些结论与在高[(-)-鹰爪豆碱]下测得的动力学同位素效应k(H)/k(D) = 1.31±0.04和哈米特ρ值-1.41±0.15一致。计算得到的活化参数与通过增加[(-)-鹰爪豆碱]导致的速率限制步骤的变化相符,低[(-)-鹰爪豆碱]时ΔH(++) = 11.55±0.65 kcal/mol,ΔS(++) = -24.5±2.0 eu,高[(-)-鹰爪豆碱]时ΔH(++) = 20.25±0.89 kcal/mol,ΔS(++) = -5.4±2.7 eu。在高[(-)-鹰爪豆碱]下,选择性受形成的非对映异构钯醇盐稳定性的热力学差异和动力学β-氢消除的影响,以最大化不对称诱导。在低[(-)-鹰爪豆碱]下,选择性受动力学去质子化的影响,导致较低的k(rel)值。一个关键的、非直观的发现是,(-)-鹰爪豆碱在仲醇的这种氧化动力学拆分中作为钯上的手性配体和外源性手性碱发挥双重作用。