Rezabal E, Ugalde J M, Frenking G
Farmazia Fakultatea, Kimika Fisikoa Departamentua, Euskal Herriko Unibertsitatea (UPV/EHU) , 01006 Vitoria-Gasteiz, Euskadi, Spain.
Donostia International Physics Center , Manuel Lardizabal Ibilbidea, 4, 20018 Donostia, Euskadi, Spain.
J Phys Chem A. 2017 Oct 12;121(40):7709-7716. doi: 10.1021/acs.jpca.7b06856. Epub 2017 Oct 2.
Palladium phosphine sulfonate complexes constitute an efficient family of catalysts for both homopolymerization of ethylene and copolymerization of ethylene with a number of polar monomers. Their catalytic mechanisms have been extensively studied but not fully understood at the electronic structure level. The energy decomposition analysis, complemented with the inspection of the natural orbitals for chemical valence, reveals that their catalytic activity can be rationalized in terms of the so-called trans effect. Furthermore, our analysis shows that the competition for the σ donation of the two ligands PMe and L, of the palladium phosphine sulfonate complexes, to the same orbital of Pd in the trans isomer and to different orbitals in the cis isomer is the origin of the trans effect. Although the dominance of the phosphine group prevents an efficient interaction of the ligand L with the Pd atom, the large stabilization gained by the phosphine group renders a very stable trans complex.
钯膦磺酸酯配合物是用于乙烯均聚以及乙烯与多种极性单体共聚的一类高效催化剂。它们的催化机理已得到广泛研究,但在电子结构层面尚未完全理解。通过能量分解分析,并辅以对化学价自然轨道的考察,结果表明它们的催化活性可以依据所谓的反位效应来进行合理阐释。此外,我们的分析表明,钯膦磺酸酯配合物中两个配体PMe和L对反式异构体中Pd的同一轨道以及顺式异构体中不同轨道的σ给予竞争是反位效应的根源。尽管膦基团的主导作用阻碍了配体L与Pd原子的有效相互作用,但膦基团所获得的巨大稳定性使得反式配合物非常稳定。