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使用具有优势的铝-萨伦配合物的对映选择性光催化作用

Enantioselective Photocatalysis Using a Privileged Al-Salen Complex.

作者信息

Soika Julia, Onneken Carina, Morack Tobias, Gilmour Ryan

机构信息

Institute for Organic Chemistry, University of Münster, Corrensstraße 36, 48149 Münster, Germany.

出版信息

Acc Chem Res. 2025 May 20;58(10):1710-1723. doi: 10.1021/acs.accounts.5c00194. Epub 2025 Apr 30.

DOI:10.1021/acs.accounts.5c00194
PMID:40304405
Abstract

ConspectusEnantioselective catalysts that exhibit broad generality are disruptive innovators in contemporary synthesis and are considered to be "privileged" on account of their expansive reactivity/selectivity profiles. Operating in the ground state, these species simultaneously regulate reactivity and orchestrate the translation of chiral information with exquisite efficiency: achieving parity in higher-energy (excited-state) scenarios remains a frontier in contemporary catalysis. Advancing this field will require new structure-activation guidelines to be delineated that reflect the energetic realities of achieving chiral induction in non-ground-state environments, thereby expediting the discovery of privileged photocatalysts. Earth-abundant aluminum-salen (Al-salen) complexes, which have a venerable history in ground-state enantioselective catalysis, show great promise in reconciling this disparity on account of their well-defined photophysical properties. In this Account, the potential of these catalysts in engaging various substrates via discrete activation modes to furnish optically enriched products with high levels of reliability is discussed. The deployment of commercial Al-salen complexes in the single electron transfer (SET)-enabled deracemization of cyclopropyl ketones is an exemplar. Irradiation of a commercial Al-salen complex augments the function of the catalyst to enable efficient deracemization (up to 98:2 ), thereby eliminating the need for directing units. In stark contrast to conventional deracemization approaches that are predicated on C(sp)-H deprotonation/reprotonation sequences, the transformation is characterized by a key C(sp)-C(sp) bond cleavage/cyclization process. Subsequent downstream manipulations of the enantioenriched products demonstrate the synthetic utility of the methodology. To illustrate mechanistic diversity using the same Al-salen complex, an enantioselective photocyclization under the auspices of energy transfer (EnT) catalysis is described. The photocyclization of acrylanilides under operationally simple conditions facilitates access to a diverse group of heterocyclic products (up to quantitative yield and 96:4 ) using an Al-salen as the sole chiral operator. Collectively, these mechanistically distinct scenarios illustrate that light activation is a powerful strategy to augment the reactivity arsenal of a ubiquitous small molecule catalyst that is considered to be privileged in the ground state. The mechanistic foundations of reaction development are surveyed (combined experimental and computational approach), together with a perspective on the impact of this enabling technology in chiral functional molecule discovery. This Account serves to emphasize the synthetic utility of leveraging photochemical activation to mitigate intrinsic constraints of processes that might be considered to be thermochemically challenging.

摘要

概述

具有广泛通用性的对映选择性催化剂是当代合成领域的颠覆性创新者,因其广泛的反应性/选择性特征而被视为“特权”催化剂。这些物种在基态下运行,能同时高效地调节反应性并精心安排手性信息的传递:在高能(激发态)情况下实现同等效果仍是当代催化领域的前沿课题。推动该领域发展需要制定新的结构-活化指导原则,以反映在非基态环境中实现手性诱导的能量现实,从而加速发现具有特权的光催化剂。在地态对映选择性催化方面有着悠久历史的地壳丰富的铝-萨伦(Al-salen)配合物,因其明确的光物理性质,在调和这一差距方面显示出巨大潜力。在本综述中,讨论了这些催化剂通过离散活化模式与各种底物作用,以高可靠性提供光学富集产物的潜力。商业Al-salen配合物在单电子转移(SET)促进的环丙基酮去消旋化中的应用就是一个例子。照射一种商业Al-salen配合物可增强催化剂的功能,实现高效去消旋化(高达98:2),从而无需导向基团。与基于C(sp)-H去质子化/再质子化序列的传统去消旋化方法形成鲜明对比的是,该转化的特征是关键的C(sp)-C(sp)键断裂/环化过程。对映体富集产物的后续下游操作证明了该方法的合成效用。为了用相同的Al-salen配合物说明机理多样性,描述了在能量转移(EnT)催化作用下的对映选择性光环化反应。在操作简单的条件下,丙烯酰苯胺的光环化反应以Al-salen作为唯一的手性媒介,有助于获得多种杂环产物(产率高达定量,对映体比例为96:4)。总的来说,这些机理不同的情况表明,光活化是一种强大的策略,可以增加一种在基态被视为具有特权的普遍存在的小分子催化剂的反应性武器库。本文考察了反应发展的机理基础(结合实验和计算方法),并展望了这种使能技术在发现手性功能分子方面的影响。本综述旨在强调利用光化学活化来缓解可能被认为是热化学挑战性过程的内在限制的合成效用。

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引用本文的文献

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