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Synthesis, Structural Characterization, and Coordination Chemistry of (Trineopentylphosphine)palladium(aryl)bromide Dimer Complexes ([(NpP)Pd(Ar)Br]). | LitMetric

AI Article Synopsis

  • A variety of [(PNp)Pd(Ar)Br] complexes were synthesized and analyzed using X-ray crystallography and computational methods, featuring trineopentylphosphine (PNp) and various aryl groups (Ar).
  • The trineopentylphosphine ligand demonstrates flexibility, allowing it to adjust its shape to accommodate bulky ligands, which is reflected in changes to its buried volume.
  • Experimental and computational analyses revealed that the binding equilibrium of these complexes with pyridine derivatives is largely influenced by steric factors from the pyridine rather than the aryl ligand, and it does not correlate with the basicity of pyridine as seen in earlier studies.

Article Abstract

A series of [(PNp)Pd(Ar)Br] complexes (PNp = trineopentylphosphine, Ar = 4-tolyl, 4--butylphenyl, 2-tolyl, 4-methoxy-2-methylphenyl, 2-isopropylphenyl, and 2,6-dimethylphenyl) were synthesized and structurally characterized by X-ray crystallography and density functional theory optimized structures. The trineopentylphosphine ligand is able to accommodate coordination of other sterically demanding ligands through changes in its conformation. These conformational changes can be seen in changes in percent buried volume of the PNp ligand. The binding equilibria of the [(PNp)Pd(Ar)Br] complexes with pyridine derivatives were determined experimentally and analyzed computationally. The binding equilibria are sensitive to the steric demand of the pyridine ligand and less sensitive to the steric demand of the aryl ligand on palladium. In contrast to previous studies, the binding equilibria do not correlate with pyridine basicity. The binding equilibria results are relevant to fundamental ligand coordination steps in cross-coupling reactions, such as Buchwald-Hartwig aminations.

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Source
http://dx.doi.org/10.1021/acs.inorgchem.9b02164DOI Listing

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