Synthesis, Structure, and Reactivity of Pentamethylcyclopentadienyl 2,4,6-Triphenylphosphinine Iron Complexes

Abstract

The potassium salt [K([18]­crown-6)­(THF)<sub>2</sub>]­[Cp*Fe­(η<sup>4</sup>-2,4,6-triphenyl­phosphinine)}] (<b>K1</b>, Cp* = C<sub>5</sub>Me<sub>5</sub>) can be isolated in 68% yield by reacting the anionic naphthalene complex [K([18]­crown-6)­{Cp*Fe­(η<sup>4</sup>-C<sub>10</sub>H<sub>8</sub>)}] (C<sub>10</sub>H<sub>8</sub> = naphthalene) with 2,4,6-triphenylphosphinine. Compound <b>K1</b> reacts with water to afford [K([18]-crown-6)]­{Cp*Fe­(η<sup>4</sup>-2,4,6-triphenyl-2,3-dihydrophosphinine 1-oxide)}] (<b>K2</b>) with a novel 2,3-dihydrophosphinine 1-oxide ligand. Oxidation of <b>K1</b> with one equivalent of ferrocenium hexafluorophosphate yields the P–P-bonded diphosphinine complex [Cp*Fe­(η<sup>5</sup>-2,4,6-triphenyl­phosphinine)]<sub>2</sub> (<b>3</b>), while the iodide salt [Cp*Fe­(η<sup>6</sup>-2,4,6-triphenyl­phosphinine)]­I (<b>4</b>) can be obtained by reacting <b>K1</b> with one equivalent of iodine. Reactions of <b>4</b> with LiNMe<sub>2</sub>, Cp*Li, LiBHEt<sub>3</sub>, and Ga­(nacnac<sup>Dipp</sup>) (nacnac<sup>Dipp</sup> = HC­{C­(Me)­N­(C<sub>6</sub>H<sub>3</sub>-2,6-<i>i</i>Pr<sub>2</sub>)}<sub>2</sub>) afford [Cp*Fe­(η<sup>5</sup>-1-dimethylamino-2,4,6-triphenyl­phosphacyclohexadienyl)] (<b>5</b>), [Cp*Fe­(η<sup>5</sup>-1-(η<sup>1</sup>-Cp*)-2,4,6-triphenyl­phosphacyclohexadienyl)] (<b>6</b>), [Cp*Fe­(η<sup>5</sup>-1-hydro-2,4,6-triphenyl­phosphacyclohexadienyl)] (<b>7</b>), and [Cp*Fe­((η<sup>5</sup>-1-{Ga­(nacnac<sup>Dipp</sup>)­I}-2,4,6-triphenyl­phosphacyclohexadienyl] (<b>8</b>). The molecular structures of <b>5</b>–<b>8</b> display η<sup>5</sup>-coordinated λ<sup>3</sup>σ<sup>3</sup>-phosphinine anions. All new complexes were fully characterized by spectroscopic techniques (<sup>1</sup>H, <sup>13</sup>C, and <sup>31</sup>P NMR, UV–vis, and IR spectroscopy), elemental analysis, and X-ray crystallography. The electronic structures of these new phosphinine complexes were investigated theoretically at the DFT level, using molecular orbital and population analyses. The nature of the electronic transitions observed in the UV–vis spectra was analyzed using TD-DFT calculations

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