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用于醇类底物选择性氧化的封装中性钌催化剂

Encapsulated Neutral Ruthenium Catalyst for Substrate-Selective Oxidation of Alcohols.

作者信息

Hkiri Shaima, Steinmetz Maxime, Schurhammer Rachel, Sémeril David

机构信息

Synthèse Organométallique et Catalyse, UMR-CNRS 7177-Institut de Chimie de Strasbourg, Université de Strasbourg, 4 rue Blaise Pascal, 67008, Strasbourg, France.

Laboratoire de Modélisation et Simulations Moléculaires, UMR-CNRS 7140-Chimie de la Matière Complexe, Université de Strasbourg, 4 rue Blaise Pascal, 67008, Strasbourg, France.

出版信息

Chemistry. 2022 Oct 18;28(58):e202201887. doi: 10.1002/chem.202201887. Epub 2022 Aug 23.

Abstract

The neutral complex dichloro-{diethyl[(5-phenyl-1,3,4-oxadiazol-2-ylamino)-(4-trifluoro-methylphenyl)methyl]phosphonate} (p-cymene)-ruthenium(II) was encapsulated inside a self-assembled hexameric host obtained upon reaction of 2,8,14,20-tetra-undecyl-resorcin[4]arene and water. The formation of an inclusion complex was inferred from a combination of spectral measurements (MS, UV/Vis spectroscopy, H and DOSY NMR). The P and F NMR spectra are consistent with motions of the ruthenium complex inside the self-assembled capsule. Molecular dynamics simulations carried out on the inclusion complex confirmed these intra-cavity movements and highlighted possible supramolecular interactions between the ruthenium first coordination sphere ligands and the inner part (aromatic rings) of the capsule. The embedded ruthenium complex was assessed in the catalytic oxidation (using NaIO as oxidant) of mixtures of three arylmethyl alcohols into the corresponding aldehydes. The reaction kinetics were shown to vary as a function of the substrates' size, with the oxidation rate varying in the order benzylalcohol >4-phenyl-benzylalcohol >9-anthracenemethanol. Control experiments realized in the absence of hexameric capsule did not allow any discrimination between the substrates.

摘要

中性配合物二氯-{二乙基[(5-苯基-1,3,4-恶二唑-2-基氨基)-(4-三氟甲基苯基)甲基]膦酸酯}(对异丙基苯)-钌(II)被封装在由2,8,14,20-四-十一烷基-间苯二酚[4]芳烃与水反应得到的自组装六聚体主体内部。通过光谱测量(质谱、紫外/可见光谱、氢谱和扩散排序光谱)相结合推断出包合物的形成。磷谱和氟谱与钌配合物在自组装胶囊内部的运动一致。对包合物进行的分子动力学模拟证实了这些腔内运动,并突出了钌第一配位层配体与胶囊内部(芳香环)之间可能存在的超分子相互作用。评估了嵌入的钌配合物对三种芳基甲醇混合物催化氧化(以碘酸钠为氧化剂)生成相应醛的性能。结果表明,反应动力学随底物尺寸而变化,氧化速率顺序为苯甲醇>4-苯基苯甲醇>9-蒽甲醇。在没有六聚体胶囊的情况下进行的对照实验无法区分底物。

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