School of Chemistry and Chemical Engineering, State Key Laboratory of Coordination Chemistry, Jiangsu Key Laboratory of Advanced Organic Materials, Nanjing University, 210093 Nanjing, China.
Department of Organic Chemistry I, Faculty of Chemistry, University of the Basque Country UPV/EHU, Paseo Manuel Lardizábal 3, 20018 San Sebastián, Spain.
Chem Soc Rev. 2018 Feb 21;47(4):1307-1350. doi: 10.1039/c6cs00703a. Epub 2017 Dec 22.
Chiral sulfoxides are in extremely high demand in nearly every sector of the chemical industry concerned with the design and development of new synthetic reagents, drugs, and functional materials. The primary objective of this review is to update readers on the latest developments from the past five years (2011-2016) in the preparation of optically active sulfoxides. Methodologies covered include catalytic asymmetric sulfoxidation using either chemical, enzymatic, or hybrid biocatalytic means; kinetic resolution involving oxidation to sulfones, reduction to sulfides, modification of side chains, and imidation to sulfoximines; as well as various other methods including nucleophilic displacement at the sulfur atom for the desymmetrization of achiral sulfoxides, enantioselective recognition and separation based on either metal-organic frameworks (MOF's) or host-guest chemistry, and the Horner-Wadsworth-Emmons reaction. A second goal of this work concerns a critical discussion of the problem of the accurate determination of the stereochemical outcome of a reaction due to the self-disproportionation of enantiomers (SDE) phenomenon, particularly as it relates to chiral sulfoxides. The SDE is a little-appreciated phenomenon that can readily and spontaneously occur for scalemic samples when subjected to practically any physicochemical process. It has now been unequivocally demonstrated that ignorance in the SDE phenomenon inevitably leads to erroneous interpretation of the stereochemical outcome of catalytic enantioselective reactions, in particular, for the synthesis of chiral sulfoxides. It is hoped that this two-pronged approach to covering the chemistry of chiral sulfoxides will be appealing, engaging, and motivating for current research-active authors to respond to in their future publications in this exciting area of current research.
手性亚砜在与新型合成试剂、药物和功能材料的设计和开发相关的几乎每个化学工业领域都有极高的需求。本篇综述的主要目的是向读者介绍过去五年(2011-2016 年)在制备光学活性亚砜方面的最新进展。涵盖的方法包括使用化学、酶或混合生物催化手段进行催化不对称亚砜氧化;涉及氧化为砜、还原为硫醚、侧链修饰和亚胺化为亚砜亚胺的动力学拆分;以及各种其他方法,包括在不对称硫原子上的亲核取代用于非手性亚砜的去对称化、基于金属有机骨架(MOF)或主体-客体化学的对映选择性识别和分离,以及霍纳-沃兹沃思-埃蒙斯反应。这项工作的第二个目标是批判性地讨论由于对映体自拆分(SDE)现象反应立体化学结果的准确确定的问题,特别是与手性亚砜有关的问题。SDE 是一种未被充分认识的现象,当手性样品受到几乎任何物理化学过程的影响时,它很容易自发地发生。现在已经明确证明,对 SDE 现象的无知不可避免地导致对催化对映选择性反应立体化学结果的错误解释,特别是在手性亚砜的合成中。希望这种涵盖手性亚砜化学的双管齐下的方法能够吸引、吸引和激励当前活跃的研究作者在这一令人兴奋的当前研究领域的未来出版物中做出回应。