Versatile Fe–Sn Bonding Interactions in a Metallostannylene System: Multiple Bonding and C–H Bond Activation
Article 2021 en
Authors
RH
Rex C. Handford
MN
Mark A. Nesbit
PS
Patrick W. Smith
Abstract
1 min read
The metallostannylene Cp*(<sup><i>i</i></sup>Pr<sub>2</sub>MeP)(H)<sub>2</sub>Fe-SnDMP (<b>1</b>; Cp* = η<sup>5</sup>-C<sub>5</sub>Me<sub>5</sub>; DMP = 2,6-dimesitylphenyl), formed by hydrogen migration in a putative Cp*(<sup><i>i</i></sup>Pr<sub>2</sub>MeP)HFe[Sn(H)DMP] intermediate, serves as a robust platform for exploration of transition-metal main-group element bonding and reactivity. Upon one-electron oxidation, <b>1</b> expels H<sub>2</sub> to generate the coordinatively unsaturated [Cp*(<sup><i>i</i></sup>Pr<sub>2</sub>MeP)Fe═SnDMP][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] (<b>3</b>), which possesses a highly polarized Fe-Sn multiple bond that involves interaction of the tin lone pair with iron. Evidence from EPR and <sup>57</sup>Fe Mössbauer spectroscopy, along with DFT studies, shows that <b>3</b> is primarily an iron-based radical with charge localization at tin. Upon reduction of <b>3</b>, C-H bond activation of the phosphine ligand was observed to produce Cp*HFe(κ<sup>2</sup>-(<i>P,Sn</i>)═Sn(DMP)CH<sub>2</sub>CHMePMe<sup><i>i</i></sup>Pr) (<b>5</b>). Complex <b>5</b> was also accessed via thermolysis of <b>1</b>, and kinetics studies of this thermolytic pathway indicate that the reductive elimination of H<sub>2</sub> from <b>1</b> to produce a stannylyne intermediate, Cp*(<sup><i>i</i></sup>Pr<sub>2</sub>MeP)Fe[SnDMP] (<b>A</b>), is likely rate-determining. Evidence indicates that the production of <b>5</b> proceeds through a concerted C-H bond activation. DFT investigations suggest that the transition state for this transformation involves C-H cleavage across the Fe-Sn bond and that a related transition state where C-H bond activation occurs exclusively at the tin center is disfavored, illustrating an effect of iron-tin cooperativity in this system.
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