Trnka Tina M, Morgan John P, Sanford Melanie S, Wilhelm Thomas E, Scholl Matthias, Choi Tae-Lim, Ding Sheng, Day Michael W, Grubbs Robert H
Arnold and Mabel Beckman Laboratory of Chemical Synthesis, Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA 91125, USA.
J Am Chem Soc. 2003 Mar 5;125(9):2546-58. doi: 10.1021/ja021146w.
This paper reports the synthesis and characterization of a variety of ruthenium complexes coordinated with phosphine and N-heterocyclic carbene (NHC) ligands. These complexes include several alkylidene derivatives of the general formula (NHC)(PR(3))(Cl)(2)Ru=CHR', which are highly active olefin metathesis catalysts. Although these catalysts can be prepared adequately by the reaction of bis(phosphine) ruthenium alkylidene precursors with free NHCs, we have developed an alternative route that employs NHC-alcohol or -chloroform adducts as "protected" forms of the NHC ligands. This route is advantageous because NHC adducts are easier to handle than their free carbene counterparts. We also demonstrate that sterically bulky bis(NHC) complexes can be made by reaction of the pyridine-coordinated precursor (NHC)(py)(2)(Cl)(2)Ru=CHPh with free NHCs or NHC adducts. Two crystal structures are presented, one of the mixed bis(NHC) derivative (H(2)IMes)(IMes)(Cl)(2)Ru=CHPh, and the other of (PCy(3))(Cl)(CO)Ru[eta(2)-(CH(2)-C(6)H(2)Me(2))(N(2)C(3)H(4))(C(6)H(2)Me(3))], the product of ortho methyl C-H bond activation. Other side reactions encountered during the synthesis of new ruthenium alkylidene complexes include the formation of hydrido-carbonyl-chloride derivatives in the presence of primary alcohols and the deprotonation of ruthenium vinylcarbene ligands by KOBu(t). We also evaluate the olefin metathesis activity of NHC-coordinated complexes in representative RCM and ROMP reactions.
本文报道了一系列与膦和N-杂环卡宾(NHC)配体配位的钌配合物的合成与表征。这些配合物包括几种通式为(NHC)(PR(3))(Cl)(2)Ru=CHR'的亚烷基衍生物,它们是高活性的烯烃复分解催化剂。尽管这些催化剂可以通过双(膦)钌亚烷基前体与游离NHC的反应充分制备,但我们开发了一种替代路线,该路线采用NHC-醇或-氯仿加合物作为NHC配体的“保护”形式。这条路线具有优势,因为NHC加合物比其游离卡宾对应物更易于处理。我们还证明,通过吡啶配位的前体(NHC)(py)(2)(Cl)(2)Ru=CHPh与游离NHC或NHC加合物反应,可以制备空间位阻较大的双(NHC)配合物。给出了两种晶体结构,一种是混合双(NHC)衍生物(H(2)IMes)(IMes)(Cl)(2)Ru=CHPh的晶体结构,另一种是邻位甲基C-H键活化产物(PCy(3))(Cl)(CO)Ru[η(2)-(CH(2)-C(6)H(2)Me(2))(N(2)C(3)H(4))(C(6)H(2)Me(3))]的晶体结构。在新型钌亚烷基配合物的合成过程中遇到的其他副反应包括在伯醇存在下形成氢羰基氯衍生物以及KOBu(t)使钌乙烯基卡宾配体去质子化。我们还评估了NHC配位配合物在代表性的关环复分解(RCM)和开环易位聚合(ROMP)反应中的烯烃复分解活性。