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用 N-杂环烯烃(NHOs)推动化学键的极限:从催化学到主族元素化学。

Pushing Chemical Boundaries with N-Heterocyclic Olefins (NHOs): From Catalysis to Main Group Element Chemistry.

机构信息

Department of Chemistry, University of Alberta , 11227 Saskatchewan Dr., Edmonton, Alberta Canada , T6G 2G2.

出版信息

Acc Chem Res. 2017 Aug 15;50(8):2017-2025. doi: 10.1021/acs.accounts.7b00264. Epub 2017 Aug 4.

Abstract

N-Heterocyclic olefins (NHOs) have gone from the topic of a few scattered (but important) reports in the early 1990s to very recently being a ligand/reagent of choice in the far-reaching research fields of organocatalysis, olefin and heterocycle polymerization, and low oxidation state main group element chemistry. NHOs are formally derived by appending an alkylidene (CR) unit onto an N-heterocyclic carbene (NHC), and their pronounced ylidic character leads to high nucleophilicity and soft Lewis basic character at the ligating carbon atom. These olefinic donors can also be structurally derived from imidazole, triazole, and thiazole-based heterocyclic carbenes and, as a result, have highly tunable electronic and steric properties. In this Account, we will focus on various synthetic routes to imidazole-2-ylidene derived NHOs (sometimes referred to as deoxy-Breslow intermediates) followed by a discussion of the electron-donor ability of this structurally tunable ligand group. It should be mentioned that NHOs have a close structural analogy with Breslow-type intermediates, N-heterocyclic ketene aminals, and β-azolium ylides; while these latter species play important roles in advancing synthetic organic chemistry, discussion in this Account will be confined mostly to imidazole-2-ylidene derived NHOs. In addition, we will cover selected examples from the literature where NHOs and their anionic counterparts, N-heterocyclic vinylenes, are used to access reactive main group species not attainable using traditional ligands. Added motivation for these studies comes from the emerging number of low coordinate main group element based compounds that display reactivity once reserved for precious metal complexes (such as H-H and C-H bond activation). Moreover, NHOs are versatile precursors to new mixed element (P/C and N/C), and potentially bidentate, ligand constructs of great potential in catalysis, where various metal oxidation states and coordination environments need to be stabilized during a catalytic cycle. The most active area of recent growth for NHOs is their use as nucleophiles to promote efficient organocatalytic transformations, including transesterification, carbonyl reduction, and the conversion of CO into value added products. Polyesters have also been generated through the NHO-promoted ring-opening polymerization of lactones, and the highly tunable nature of NHO organocatalysts allows for the rapid screening and enhancement of catalytic performance. Therefore, the growing utility of NHOs in the realm of organic and polymer chemistry can be viewed as evidence of the widespread impact of N-heterocyclic olefins on the chemical community. It is hoped that through this Account others will join this flourishing research domain and that the rapid recent growth of NHO chemistry is sustained for the foreseeable future.

摘要

N-杂环烯烃 (NHOs) 已经从 20 世纪 90 年代初少数几篇分散但重要的报道中的主题发展成为有机催化、烯烃和杂环聚合以及低氧化态主族元素化学等广泛研究领域中首选的配体/试剂。NHOs 通过在 N-杂环卡宾 (NHC) 上附加一个亚烷基 (CR) 单元而衍生得到,其明显的叶立德特性导致配位碳原子具有高亲核性和软路易斯碱性。这些烯烃供体还可以从咪唑、三唑和噻唑基杂环卡宾衍生得到,因此具有高度可调的电子和空间性质。在本综述中,我们将重点介绍各种合成咪唑-2-亚基衍生的 NHOs(有时称为脱氧 Breslow 中间体)的路线,然后讨论这种结构可调的配体基团的电子给体能力。应该提到的是,NHOs 与 Breslow 型中间体、N-杂环烯酮亚胺和β-唑基叶立德具有密切的结构类似性;虽然这些后一种物质在推进合成有机化学方面发挥着重要作用,但本综述中的讨论将主要限于咪唑-2-亚基衍生的 NHOs。此外,我们还将涵盖文献中选择的示例,其中 NHOs 和它们的阴离子对应物 N-杂环乙烯,用于获得使用传统配体无法获得的反应性主族物种。这些研究的额外动机来自于新兴的低坐标主族元素化合物数量的增加,这些化合物显示出一旦保留给贵金属配合物(如 H-H 和 C-H 键活化)就具有反应性。此外,NHOs 是新型混合元素(P/C 和 N/C)的多功能前体,并且在催化中具有很大的潜在双齿配体构建体,在催化循环中需要稳定各种金属氧化态和配位环境。NHO 最近增长最快的领域是它们作为亲核试剂用于促进有效的有机催化转化,包括酯交换、羰基还原和将 CO 转化为增值产品。通过 NHO 促进内酯的开环聚合也生成了聚酯,并且 NHO 有机催化剂的高度可调性质允许快速筛选和增强催化性能。因此,NHO 在有机和聚合物化学领域的广泛应用可以被视为 N-杂环烯烃对化学界广泛影响的证据。希望通过本综述,其他人将加入这个蓬勃发展的研究领域,并期望 NHO 化学的快速近期增长能够持续到可预见的未来。

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