Modular Phosphole-Methano-Bridged-Phosphine(Borane)
Ligands. Application to Rhodium-Catalyzed
Reactions
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Abstract
The synthesis of the phospholyl(phosphinoborane)methane
air- and
moisture-stable hybrid ligands <b>4a</b>–<b>f</b>, starting from 1-phenylphospholes <b>1a</b>–<b>d</b>, was performed via P–C bond coupling on the methano bridge.
Two strategies were investigated, according to the phospholyl moiety
used as a nucleophilic or an electrophilic reagent. In the first pathway,
the phospholyl anions react with the easily available (chloromethyl)diphenylphosphine–borane <b>3</b> to afford ligands <b>4a</b>–<b>d</b> in
29–67% isolated yields. In the second pathway, the phospholyl(dicyclohexylphosphinoborane)methane
ligands <b>4e</b>,<b>f</b> were synthesized in 18–23%
yields, through a nucleophilic substitution on the cyanophosphole.
Removal of the BH<sub>3</sub> moiety on <b>4a</b>–<b>c</b> assisted by DABCO leads to the hybrid phospholyl(diphenylphosphino)methanes <b>5a</b>–<b>c</b>. Compounds <b>4</b> and <b>5</b> were fully characterized by multinuclear NMR spectroscopy
(<sup>1</sup>H, <sup>31</sup>P, <sup>13</sup>C, <sup>11</sup>B), mass
spectrometry, and elemental analysis, and the X-ray crystal structures
of <b>4a</b>,<b>c</b> and <b>5a</b>,<b>b</b> have been established. Ligands <b>5a</b>,<b>b</b> were
used to prepare the cationic rhodium complexes [Rh(η<sup>4</sup>-COD)(<b>5a</b>)]<sup>+</sup> (<b>8a′</b>), [Rh(η<sup>4</sup>-COD)(<b>5b</b>)]<sup>+</sup> (<b>8b</b>), [Rh(<b>5a</b>)<sub>2</sub>]<sup>+</sup> (<b>9a′</b>), and
[Rh(<b>5b</b>)<sub>2</sub>]<sup>+</sup> (<b>9b</b>), containing
four-membered chelate rings with BF<sub>4</sub><sup>–</sup> or CF<sub>3</sub>SO<sub>3</sub><sup>–</sup> as counterions.
Ligands <b>4a</b>–<b>f</b> were also used to synthesize
the [Rh(η<sup>4</sup>-COD)(<b>4</b>)]<sup>+</sup> chelate
complexes <b>10a</b>–<b>f</b>, resulting from coordination
of the phospholyl part and the BH<sub>3</sub> group via a η<sup>2</sup> mode with two bridging B–H–Rh 3c–2e
bonds, as shown by the X-ray crystal structures of the complexes <b>10b</b>,<b>c</b>. Rhodium complexes <b>8</b> and <b>10</b> isolated or formed in situ with ligands <b>4</b> and <b>5</b> were studied for catalytic hydrogenation of methyl 2-(acetamidomethyl)acrylate
(<b>11</b>) and hydroboration of styrene (<b>13</b>) with
catecholborane. In both reactions, the catalytic systems prepared
either from the phospholyl(phosphinoborane)methane ligands <b>4</b> or the corresponding free ligands <b>5</b>, gave good to excellent
conversions. In addition, the regioselectivity of the catalyzed hydroboration
is slightly influenced using these ligands. Finally, the use of hybrid
phospholyl(phosphinoborane)methanes as ligands offers a new, efficient
way to improve catalytic processes, for designing both the structure
and the electronic properties of the catalyst, or still to implement
it without removing the borane protecting group