Steric bulk at the phosphine donors and the identity of the metal center significantly control the stability, structure, nuclearity, and electronic properties of PNP-stabilized monovalent group 10 carbonyl complexes. Sterically undemanding P-substituents favor dinuclear carbonyl-bridged species, while increased bulk (iPr, tBu) stabilizes mononuclear adducts. The T-shaped nickel (I) complex (tBuPNP) NiI (3tBu-Ni) has been synthesized, fully characterized and subsequently compared to its iPr-substituted congener (iPrPNP) NiI (3iPr-Ni). Both Ni (I) complexes 3tBu-Ni and 3iPr-Ni were subjected to 1-5 bar of CO pressure giving the mononuclear monocarbonyl complexes (tBuPNP) NiI (CO) (4tBu-Ni) and (iPrPNP) NiI (CO) (4iPr-Ni). From the reaction of CO (5 bar) with the previously reported dinuclear complex (EtPNP) Ni2 (5Et-Ni) a dinuclear compound (EtPNP) Ni2 (μ2-CO) 2 (6) was obtained in which two carbonyl ligands are semibridging. Upon applying a CO atmosphere to a solution of the (iPrPNP) Pd2 dimer (5iPr-Pd), initially the mononuclear (iPrPNP) PdI (CO) complex (4iPr-Pd) is thought to be formed, which dimerized subsequently to give (iPrPNP) PdI2 (μ2-CO) (7). The molecular structure of the dinuclear complex 7 was established by single-crystal X-ray diffraction which confirmed its dinuclear structure with a single semibridging carbonyl ligand. Finally, reaction of the heterodinuclear Ni–Pd complex (EtPNP) Ni–Pd (EtPNP) with CO gave a dinuclear Ni (0) /Pd (II) -complex 8 demonstrating favored heterolytic bond cleavage in the presence of π acidic ligands.
Bruckhoff et al. (Thu,) studied this question.
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