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Uranium(<scp>iv</scp>) alkyl cations: synthesis, structures, comparison with thorium(<scp>iv</scp>) analogues, and the influence of arene-coordination on thermal stability and ethylene polymerization activity

10

Citations

87

References

2022

Year

Abstract

Reaction of [(XA<sub>2</sub>)U(CH<sub>2</sub>SiMe<sub>3</sub>)<sub>2</sub>] (1; XA<sub>2</sub> = 4,5-bis(2,6-diisopropylanilido)-2,7-di-<i>tert</i>-butyl-9,9-dimethylxanthene) with 1 equivalent of [Ph<sub>3</sub>C][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] in arene solvents afforded the arene-coordinated uranium alkyl cations, [(XA<sub>2</sub>)U(CH<sub>2</sub>SiMe<sub>3</sub>)(η <sup><i>n</i></sup> -arene)][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] {arene = benzene (2), toluene (3), bromobenzene (4) and fluorobenzene (5)}. Compounds 2, 3, and 5 were crystallographically characterized, and in all cases the arene is π-coordinated. Solution NMR studies of 2-5 suggest that the binding preferences of the [(XA<sub>2</sub>)U(CH<sub>2</sub>SiMe<sub>3</sub>)]<sup>+</sup> cation follow the order: toluene ≈ benzene > bromobenzene > fluorobenzene. Compounds 2-4 generated in C<sub>6</sub>H<sub>5</sub>R (R = H, Me or Br, respectively) showed no polymerization activity under 1 atm of ethylene. By contrast, 5 and 5-Th (the thorium analogue of 5) in fluorobenzene at 20 and 70 °C achieved ethylene polymerization activities between 16 800 and 139 200 g mol<sup>-1</sup> h<sup>-1</sup> atm<sup>-1</sup>, highlighting the extent to which common arene solvents such as toluene can suppress ethylene polymerization activity in sterically open f-element complexes. However, activation of [(XA<sub>2</sub>)An(CH<sub>2</sub>SiMe<sub>3</sub>)<sub>2</sub>] {M = U (1) or Th (1-Th)} with [Ph<sub>3</sub>C][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] in <i>n</i>-alkane solvents did not afford an active polymerization catalyst due to catalyst decomposition, illustrating the critical role of PhX (X = H, Me, Br or F) coordination for alkyl cation stabilization. Gas phase DFT calculations, including fragment interaction calculations with energy decomposition and ETS-NOCV analysis, were carried out on the cationic portion of 2'-Th, 2', 3' and 5' (analogues of 2-Th, 2, 3 and 5 with hydrogen atoms in place of ligand backbone methyl and <i>tert</i>-butyl groups), providing insight into the nature of actinide-arene bonding, which decreases in strength in the order 2'-Th > 2' ≈ 3' > 5'.

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