Department of Chemistry and Applied Biosciences, ETH Zürich (ETHZ), Vladimir Prelog Weg 2, CH-8093 Zürich, Switzerland.
Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.
Inorg Chem. 2021 May 17;60(10):6875-6880. doi: 10.1021/acs.inorgchem.0c03173. Epub 2021 Jan 21.
The catalytic performances of molecular and silica-supported molybdenum oxo alkylidene species bearing anionic O ligands [OR, OTPP, OHMT - where OR = OC(CF), OTPP = 2,3,5,6-tetraphenylphenoxy, OHMT = hexamethylterphenoxy] with different σ-donation abilities and sizes are evaluated in the metathesis of both internal and terminal olefins. Here, we show that the presence of the anionic nonafluoro--butoxy X ligand in Mo(O){═CH-4-(MeO)CH}(THF){X} (; X = OR) significantly increases the catalytic performances in the metathesis of both terminal and internal olefins. Its silica-supported equivalent displays slightly lower activity, albeit with improved stability. In sharp contrast, the molecular complexes with large aryloxy anionic X ligands show little activity, whereas the activity of the corresponding silica-supported systems is greatly improved, illustrating that surface siloxy groups are significantly smaller anionic ligands. Of all of the systems, compound stands out because of its unique high activity for both terminal and internal olefins. Density functional theory modeling indicates that the OR ligand is ideal in this series because of its weak σ-donating ability, avoiding overstabilization of the metallacyclobutane intermediates while keeping low barriers for [2 + 2] cycloaddition and turnstile isomerization.
研究了具有不同σ给体能力和尺寸的阴离子 O 配体 [OR、OTPP、OHMT - 其中 OR = OC(CF) 、OTPP = 2,3,5,6-四苯基苯氧基、OHMT = 六甲基三苯氧基] 的分子和硅负载的钼氧亚烷基物种在内部和末端烯烃复分解反应中的催化性能。在这里,我们表明,在 Mo(O){═CH-4-(MeO)CH}(THF){X} (; X = OR) 中存在阴离子全氟--丁氧基 X 配体,可显著提高末端和内部烯烃复分解反应的催化性能。其硅负载等效物的活性略低,但稳定性提高。相比之下,具有大芳氧基阴离子 X 配体的分子配合物的活性很低,而相应的硅负载体系的活性大大提高,表明表面硅氧基基团是明显较小的阴离子配体。在所有体系中,化合物 因其对末端和内部烯烃均具有独特的高活性而脱颖而出。密度泛函理论建模表明,OR 配体在该系列中是理想的,因为它的 σ 给体能力较弱,避免了金属环丁烷中间体的过度稳定,同时保持了 [2 + 2] 环加成和转门异构化的低能垒。