Jabbour Ribal, Ashling Christopher W, Robinson Thomas C, Khan Arafat Hossain, Wisser Dorothea, Berruyer Pierrick, Ghosh Ashta C, Ranscht Alisa, Keen David A, Brunner Eike, Canivet Jérôme, Bennett Thomas D, Mellot-Draznieks Caroline, Lesage Anne, Wisser Florian M
Centre de RMN à Très Hauts Champs, Université de Lyon (CNRS/ENS Lyon/UCB Lyon 1), 69100, Villeurbanne, France.
Department of Materials Science and Metallurgy, University of Cambridge, 27 Charles Babbage Road, Cambridge, CB3 0FS, UK.
Angew Chem Int Ed Engl. 2023 Oct 26;62(44):e202310878. doi: 10.1002/anie.202310878. Epub 2023 Sep 26.
The catalytic activity of multifunctional, microporous materials is directly linked to the spatial arrangement of their structural building blocks. Despite great achievements in the design and incorporation of isolated catalytically active metal complexes within such materials, a detailed understanding of their atomic-level structure and the local environment of the active species remains a fundamental challenge, especially when these latter are hosted in non-crystalline organic polymers. Here, we show that by combining computational chemistry with pair distribution function analysis, Xe NMR, and Dynamic Nuclear Polarization enhanced NMR spectroscopy, a very accurate description of the molecular structure and confining surroundings of a catalytically active Rh-based organometallic complex incorporated inside the cavity of amorphous bipyridine-based porous polymers is obtained. Small, but significant, differences in the structural properties of the polymers are highlighted depending on their backbone motifs.
多功能微孔材料的催化活性与其结构构建单元的空间排列直接相关。尽管在将孤立的催化活性金属配合物设计并引入此类材料方面取得了巨大成就,但对其原子级结构以及活性物种的局部环境进行详细了解仍然是一项根本性挑战,尤其是当这些活性物种存在于非晶态有机聚合物中时。在此,我们表明,通过将计算化学与对分布函数分析、氙核磁共振(Xe NMR)以及动态核极化增强核磁共振光谱相结合,可以非常准确地描述掺入无定形联吡啶基多孔聚合物腔内的基于铑的催化活性有机金属配合物的分子结构和受限环境。根据聚合物的主链基序,突出显示了聚合物结构性质中虽小但显著的差异。