Hamza Andrea, Schubert Gabor, Soós Tibor, Papai Imre
Institute of Structural Chemistry, Chemical Research Center of the Hungarian Academy of Sciences, Pusztaszeri út 59-67, H-1025 Budapest, Hungary.
J Am Chem Soc. 2006 Oct 11;128(40):13151-60. doi: 10.1021/ja063201x.
The mechanism of enantioselective Michael addition of acetylacetone to a nitroolefin catalyzed by a thiourea-based chiral bifunctional organocatalyst is investigated using density functional theory calculations. A systematic conformational analysis is presented for the catalyst, and it is shown that both substrates coordinate preferentially via bidentate hydrogen bonds. The deprotonation of the enol form of acetylacetone by the amine of the catalyst is found to occur easily, leading to an ion pair characterized by multiple H-bonds involving the thiourea unit as well. Two distinct reaction pathways are explored toward the formation of the Michael product that differ in the mode of electrophile activation. Both reaction channels are shown to be consistent with the notion of noncovalent organocatalysis in that the transition states leading to the Michael adduct are stabilized by extensive H-bonded networks. The comparison of the obtained energetics for the two pathways allows us to propose an alternative mechanistic rationale for asymmetric C-C bond forming reactions catalyzed by bifunctional thiourea derivatives. The origin of enantioselectivity in the investigated reaction is also discussed.
利用密度泛函理论计算研究了基于硫脲的手性双功能有机催化剂催化乙酰丙酮对硝基烯烃的对映选择性迈克尔加成反应的机理。对催化剂进行了系统的构象分析,结果表明两种底物均优先通过双齿氢键进行配位。发现催化剂的胺使乙酰丙酮的烯醇形式容易发生去质子化,从而形成一种离子对,该离子对的特征还包括涉及硫脲单元的多个氢键。探索了两种不同的生成迈克尔产物的反应途径,它们在亲电试剂活化模式上有所不同。两个反应通道均显示与非共价有机催化的概念一致,即导致迈克尔加合物的过渡态通过广泛的氢键网络得以稳定。对两条途径获得的能量学进行比较,使我们能够为双功能硫脲衍生物催化的不对称碳 - 碳键形成反应提出另一种机理依据。还讨论了所研究反应中对映选择性的起源。