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ECD 激子手性方法:今天:确定绝对构型的现代工具。

ECD exciton chirality method today: a modern tool for determining absolute configurations.

机构信息

Dipartimento di Chimica e Chimica Industriale, Università di Pisa, Pisa, Italy.

出版信息

Chirality. 2022 Feb;34(2):333-363. doi: 10.1002/chir.23393. Epub 2021 Nov 17.

Abstract

The application of the exciton chirality method (ECM) to interpret electronic circular dichroism (ECD) spectra is a well-established and still popular approach to assign the absolute configuration (AC) of natural products, chiral organic compounds, and organometallic species. The method applies to compounds containing at least two chromophores with electric dipole allowed transitions (e.g., π-π* transitions). The exciton chirality rule correlates the sign of an exciton couplet (two ECD bands with opposite sign and similar intensity) with the overall molecular stereochemistry, including the AC. A correct application of the ECM requires three main prerequisites: (a) the knowledge of the molecular conformation, (b) the knowledge of the directions of the electric transition moments (TDMs), and (c) the assumption that the exciton coupling mechanism must be the major source of the observed ECD signals. All these prerequisites can be easily verified by means of quantum-mechanical (QM) calculations. In the present review, we shortly introduce the general principles that underpin the use of the ECM for configurational assignments and survey its applications, both classic ones and some reported in the recent literature. Based on these examples, we will stress the advantages of the ECM but also the key requisites for its correct application. Additionally, we will discuss the dependence of the couplet sign on geometrical parameters (angles α,β,γ between TDMs), which can be helpful for discerning the sign of exciton chirality in ambiguous situations. Finally, we will present a molecular orbital (MO) description of the exciton coupling phenomenon.

摘要

外消旋手性方法(ECM)在解释电子圆二色性(ECD)光谱中的应用是一种成熟且仍然流行的方法,用于确定天然产物、手性有机化合物和有机金属物种的绝对构型(AC)。该方法适用于至少包含两个具有允许电偶极跃迁(例如π-π*跃迁)的发色团的化合物。外消旋手性规则将偶合的外消旋信号(两个ECD 带具有相反的符号和相似的强度)的符号与整体分子立体化学,包括 AC 相关联。正确应用 ECM 需要三个主要前提条件:(a)分子构象的知识,(b)电跃迁矩(TDM)方向的知识,以及(c)假设外消旋耦合机制必须是观察到的 ECD 信号的主要来源。所有这些前提条件都可以通过量子力学(QM)计算轻松验证。在本综述中,我们简要介绍了 ECM 用于构象分配的一般原则,并调查了其应用,包括经典应用和最近文献中的一些应用。基于这些示例,我们将强调 ECM 的优点,但也强调了正确应用 ECM 的关键要求。此外,我们将讨论偶合对符号对几何参数(TDM 之间的角度α、β、γ)的依赖性,这有助于在模棱两可的情况下辨别外消旋手性的符号。最后,我们将介绍外消旋耦合现象的分子轨道(MO)描述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f32/9299504/12f9e2fac6b0/CHIR-34-333-g021.jpg

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