†Department of Chemistry and Applied Biosciences, ETH Zürich, Vladimir Prelog Weg 2, 8093 Zürich, Switzerland.
‡Department of Chemistry, University of Utah, 315 South 1400 East, Salt Lake City, Utah 84112, United States.
J Am Chem Soc. 2015 May 27;137(20):6699-704. doi: 10.1021/jacs.5b03344. Epub 2015 May 15.
A broad series of fully characterized, well-defined silica-supported W metathesis catalysts with the general formula [(≡SiO)W(═NAr)(═CHCMe2R)(X)] (Ar = 2,6-iPr2C6H3 (AriPr), 2,6-Cl2C6H3 (ArCl), 2-CF3C6H4 (ArCF3), and C6F5 (ArF5); X = OC(CF3)3 (OtBuF9), OCMe(CF3)2 (OtBuF6), OtBu, OSi(OtBu)3, 2,5-dimethylpyrrolyl (Me2Pyr) and R = Me or Ph) was prepared by grafting bis-X substituted complexes [W(NAr)(═CHCMe2R)(X)2] on silica partially dehydroxylated at 700 °C (SiO2-(700)), and their activity was evaluated with the goal to obtain detailed structure-activity relationships. Quantitative influence of the ligand set on the activity (turnover frequency, TOF) in self-metathesis of cis-4-nonene was investigated using multivariate linear regression analysis tools. The TOF of these catalysts (activity) can be well predicted from simple steric and electronic parameters of the parent protonated ligands; it is described by the mutual contribution of the NBO charge of the nitrogen or the IR intensity of the symmetric N-H stretch of the ArNH2, corresponding to the imido ligand, together with the Sterimol B5 and pKa of HX, representing the X ligand. This quantitative and predictive structure-activity relationship analysis of well-defined heterogeneous catalysts shows that high activity is associated with the combination of X and NAr ligands of opposite electronic character and paves the way toward rational development of metathesis catalysts.
一种广泛的、完全表征的、定义明确的负载于二氧化硅的 W 复分解催化剂系列,具有通式[(≡SiO)W(═NAr)(═CHCMe2R)(X)](Ar=2,6-iPr2C6H3(AriPr)、2,6-Cl2C6H3(ArCl)、2-CF3C6H4(ArCF3)和 C6F5(ArF5);X=OC(CF3)3(OtBuF9)、OCMe(CF3)2(OtBuF6)、OtBu、OSi(OtBu)3、2,5-二甲基吡咯基(Me2Pyr)和 R=Me 或 Ph),通过将双 X 取代的配合物[W(NAr)(═CHCMe2R)(X)2]接枝到在 700°C 部分脱羟的二氧化硅(SiO2-(700))上来制备,并用其目标是获得详细的结构-活性关系来评估其活性。使用多元线性回归分析工具研究了配体对顺-4-壬烯自复分解反应活性(转化率频率,TOF)的定量影响。这些催化剂的 TOF(活性)可以通过母体质子化配体的简单空间位阻和电子参数很好地预测;它由氮的 NBO 电荷或 ArNH2 的对称 N-H 伸缩振动的 IR 强度(对应于亚胺配体)与代表 X 配体的 Sterimol B5 和 pKa 的相互贡献来描述。这种对定义明确的多相催化剂的定量和可预测的结构-活性关系分析表明,高活性与具有相反电子特性的 X 和 NAr 配体的组合有关,并为开发复分解催化剂铺平了道路。