Brazier John B, Tomkinson Nicholas C O
School of Chemistry, Main Building, Cardiff University, Park Place, Cardiff, CFIO 3AT, UK.
Top Curr Chem. 2010;291:281-347. doi: 10.1007/978-3-642-02815-1_28.
Formation of iminium ions from the condensation of chiral secondary or primary amines with alpha,beta-unsaturated aldehydes or ketones can be used as an effective platform for the acceleration of a wide variety of catalytic asymmetric cycloaddition and conjugate addition reactions. The reversible formation of the active iminium ion species simulates the pi-electronics and equilibrium dynamics traditionally associated with Lewis acid activation of alpha,beta-unsaturated carbonyl compounds lowering the energy level of the LUMO associated with the pi-system and activating subsequent reaction. Importantly, these iminium ion catalysed processes offer the opportunity to conduct reactions in the presence of both moisture and air greatly adding to the practicality and general applicability of the chemistry described. Proposed catalytic cycles and transition state models for the induction of asymmetry provide reliable and robust predictive tools for the outcome of reactions and high functional group tolerance suggests this class of transformation will have broad application in the arena of synthetic organic chemistry as the area matures. This review describes the rapid expansion of iminium ion catalysis over recent years from its conceptual introduction to the development of a whole new arsenal of highly practical and effective methods with which to approach challenging and fundamental bond construction processes.
手性仲胺或伯胺与α,β-不饱和醛或酮缩合形成亚胺离子,可作为加速各种催化不对称环加成和共轭加成反应的有效平台。活性亚胺离子物种的可逆形成模拟了传统上与α,β-不饱和羰基化合物的路易斯酸活化相关的π电子和平衡动力学,降低了与π体系相关的最低未占分子轨道(LUMO)的能级,并激活后续反应。重要的是,这些亚胺离子催化过程提供了在水分和空气存在下进行反应的机会,极大地增加了所述化学方法的实用性和普遍适用性。提出的用于诱导不对称性的催化循环和过渡态模型为反应结果提供了可靠且强大的预测工具,高官能团耐受性表明随着该领域的成熟,这类转化将在合成有机化学领域具有广泛应用。本综述描述了近年来亚胺离子催化从概念引入到开发全新一系列高度实用和有效方法的快速发展,这些方法可用于处理具有挑战性的基本键构建过程。