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Structural modification of phenoxyimine titanium complexes and activation studies with alkylaluminum compounds
Author(s) -
Yang Huaqin,
Ingen Yara,
Blom Burgert,
Rastogi Sanjay,
Romano Dario
Publication year - 2020
Publication title -
chemcatchem
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.497
H-Index - 106
eISSN - 1867-3899
pISSN - 1867-3880
DOI - 10.1002/cctc.202000731
Subject(s) - methylaluminoxane , chemistry , catalysis , reactivity (psychology) , ligand (biochemistry) , medicinal chemistry , alkyl , homo/lumo , ethylene , polymer chemistry , stereochemistry , metallocene , polymerization , organic chemistry , molecule , medicine , biochemistry , alternative medicine , receptor , pathology , polymer
The synthesis and characterization of three complexes of the type (N‐(3‐ tert ‐butylsalicylidene)‐R) 2 TiCl 2 [R=2,6‐difluorophenyl 1 , R=2,6‐dimethylphenyl 2 , R=phenyl 3 ] is reported and compared with the highly active R=2,3,4,5,6,–pentafluorophenyl 4 . The complexes were tested for ethylene polymerization when activated with different co‐catalysts, giving high catalytic activity when activated with methylaluminoxane for complexes 3 and 4 . Complex 3 is the only catalyst to be inactive when activated with diethylaluminum chloride. Unexpectedly, for complexes 1 and 2 , no catalytic activity is recorded when butylated hydroxytoluene in methylaluminoxane is used to remove the trimethylaluminum, while the catalytic activity for complex 3 is retained. NMR study on the activation of the four complexes in the presence of common alkyl aluminum co‐catalysts suggests the formation of Ti(III) species in the presence of tri‐ iso ‐butylaluminum, and also the formation of NR−CH 2 (R: −Al(CH 2 CH(CH 3 ) 2 ) 2 ) bond from the N=C−H bond of the ligand explaining the absence of catalytic activity. Density functional theory calculations using B3LYP and a combination of basis sets (6‐31+G and cc‐pVTZ) were performed on the catalyst precursors and the activated species showing insights into the frontier orbitals, localizing the LUMO on the imino bond elucidating their reactivity. Mulliken charges are also reported and an unexpected relationship between the nitrogen on the ligands and the molecular weight is observed.