Ghadwal Rajendra S
Molecular Inorganic Chemistry and Catalysis, Inorganic and Structural Chemistry, Center for Molecular Materials, Faculty of Chemistry, Universität Bielefeld, Universitätsstrasse 25, 33615, Bielefeld, Germany.
Angew Chem Int Ed Engl. 2023 Sep 4;62(36):e202304665. doi: 10.1002/anie.202304665. Epub 2023 Jun 12.
Classical N-heterocyclic carbenes (NHCs) featuring the carbene center at the C2-position of 1,3-imidazole framework (i.e. C2-carbenes) are well acknowledged as very versatile neutral ligands in molecular as well as in materials sciences. The efficiency and success of NHCs in diverse areas is essentially attributed to their persuasive stereoelectronics, in particular the potent σ-donor property. The NHCs with the carbene center at the unusual C4 (or C5) position, the so-called abnormal NHCs (aNHCs) or mesoionic carbenes (iMICs), are however superior σ-donors than C2-carbenes. Hence, iMICs have substantial potential in sustainable synthesis and catalysis. The main obstacle in this direction is rather demanding synthetic accessibility of iMICs. The aim of this review article is to highlight recent advances, particularly by the author's research group, in accessing stable iMICs, quantifying their properties, and exploring their applications in synthesis and catalysis. In addition, the synthetic viability and use of vicinal C4,C5-anionic dicarbenes (ADCs), also based on an 1,3-imidazole framework, are presented. As will be apparent on following pages, iMICs and ADCs hold potentials in pushing the limit of classical NHCs by enabling access to conceptually new main-group heterocycles, radicals, molecular catalysts, ligands sets, and more.
在1,3 - 咪唑骨架的C2位置具有卡宾中心的经典N - 杂环卡宾(NHCs),即C2 - 卡宾,在分子科学和材料科学中被公认为是非常通用的中性配体。NHCs在不同领域的高效性和成功本质上归因于它们有说服力的立体电子学,特别是强大的σ供体性质。然而,在不寻常的C4(或C5)位置具有卡宾中心的NHCs,即所谓的异常NHCs(aNHCs)或中离子卡宾(iMICs),是比C2 - 卡宾更好的σ供体。因此,iMICs在可持续合成和催化方面具有巨大潜力。在这个方向上的主要障碍是iMICs的合成可及性要求相当高。这篇综述文章的目的是突出近期的进展,特别是作者研究小组在获得稳定的iMICs、量化它们的性质以及探索它们在合成和催化中的应用方面的进展。此外,还介绍了同样基于1,3 - 咪唑骨架的邻位C4,C5 - 阴离子双卡宾(ADCs)的合成可行性和用途。正如在接下来的页面中将看到的,iMICs和ADCs通过能够获得概念上新的主族杂环、自由基、分子催化剂、配体集等,在推动经典NHCs的极限方面具有潜力。