Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis
The E‒H bond activation chemistry of <i>tris</i>-phosophino-iron and -cobalt metallaboratranes is discussed. The ferraboratrane complex (<b>TPB</b>)Fe(N<sub>2</sub>) heterolytically activates H‒H and the C‒H bonds of formaldehyde and arylacetylenes across an Fe‒B...
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ndltd-CALTECH-oai-thesis.library.caltech.edu-87462019-10-05T03:03:23Z Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis Fong, Henry The E‒H bond activation chemistry of <i>tris</i>-phosophino-iron and -cobalt metallaboratranes is discussed. The ferraboratrane complex (<b>TPB</b>)Fe(N<sub>2</sub>) heterolytically activates H‒H and the C‒H bonds of formaldehyde and arylacetylenes across an Fe‒B bond. In particular, H‒H bond cleavage at (<b>TPB</b>)Fe(N<sub>2</sub>) is reversible and affords the iron-hydride-borohydride complex (<b>TPB</b>)(μ‒H)Fe(L)(H) (L = H<sub>2</sub>, N<sub>2</sub>). (<b>TPB</b>)(μ‒H)Fe(L)(H) and (<b>TPB</b>)Fe(N<sub>2</sub>) are competent olefin and arylacetylene hydrogenation catalysts. Stoichiometric studies indicate that the B‒H unit is capable of acting as a hydride shuttle in the hydrogenation of olefin and arylacetylene substrates. The heterolytic cleavage of H<sub>2</sub> by the (<b>TPB</b>)Fe system is distinct from the previously reported (<b>TPB</b>)Co(H<sub>2</sub>) complex, where H<sub>2</sub> coordinates as a non-classical H<sub>2</sub> adduct based on X-ray, spectroscopic, and reactivity data. The non-classical H<sub>2</sub> ligand in (<b>TPB</b>)Co(H<sub>2</sub>) is confirmed in this work by single crystal neutron diffraction, which unequivocally shows an intact H‒H bond of 0.83 Å in the solid state. The neutron structure also shows that the H<sub>2</sub> ligand is localized at two orientations on cobalt <i>trans</i> to the boron. This localization in the solid state contrasts with the results from ENDOR spectroscopy that show that the H<sub>2</sub> ligand freely rotates about the Co‒H<sub>2</sub> axis in frozen solution. Finally, the (<b>TPB</b>)Fe system, as well as related <i>tris</i>-phosphino-iron complexes that contain a different apical ligand unit (Si, PhB, C, and N) in place of the boron in (<b>TPB</b>)Fe, were studied for CO<sub>2</sub> hydrogenation chemistry. The (<b>TPB</b>)Fe system is not catalytically competent, while the silicon, borate, carbon variants, (<b>SiP<sup>R</sup><sub>3</sub></b>)Fe, (<b>PhBP<sup><i>i</i>Pr</sup><sub>3</sub></b>)Fe, and (<b>CP<sup><i>i</i>Pr</sup><sub>3</sub></b>)Fe, respectively, are catalysts for the hydrogenation of CO<sub>2</sub> to formate and methylformate. The hydricity of the CO<sub>2</sub> reactive species in the silatrane system (<b>SiP<sup><i>i</i>Pr</sup><sub>3</sub></b>)Fe(N<sub>2</sub>)(H) has been experimentally estimated. 2015 Thesis NonPeerReviewed application/pdf https://thesis.library.caltech.edu/8746/13/Fong_Henry_2015_thesis.pdf https://resolver.caltech.edu/CaltechTHESIS:12152014-181907516 Fong, Henry (2015) Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9TX3C9P. https://resolver.caltech.edu/CaltechTHESIS:12152014-181907516 <https://resolver.caltech.edu/CaltechTHESIS:12152014-181907516> https://thesis.library.caltech.edu/8746/ |
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The E‒H bond activation chemistry of <i>tris</i>-phosophino-iron and -cobalt metallaboratranes is discussed. The ferraboratrane complex (<b>TPB</b>)Fe(N<sub>2</sub>) heterolytically activates H‒H and the C‒H bonds of formaldehyde and arylacetylenes across an Fe‒B bond. In particular, H‒H bond cleavage at (<b>TPB</b>)Fe(N<sub>2</sub>) is reversible and affords the iron-hydride-borohydride complex (<b>TPB</b>)(μ‒H)Fe(L)(H) (L = H<sub>2</sub>, N<sub>2</sub>). (<b>TPB</b>)(μ‒H)Fe(L)(H) and (<b>TPB</b>)Fe(N<sub>2</sub>) are competent olefin and arylacetylene hydrogenation catalysts. Stoichiometric studies indicate that the B‒H unit is capable of acting as a hydride shuttle in the hydrogenation of olefin and arylacetylene substrates. The heterolytic cleavage of H<sub>2</sub> by the (<b>TPB</b>)Fe system is distinct from the previously reported (<b>TPB</b>)Co(H<sub>2</sub>) complex, where H<sub>2</sub> coordinates as a non-classical H<sub>2</sub> adduct based on X-ray, spectroscopic, and reactivity data. The non-classical H<sub>2</sub> ligand in (<b>TPB</b>)Co(H<sub>2</sub>) is confirmed in this work by single crystal neutron diffraction, which unequivocally shows an intact H‒H bond of 0.83 Å in the solid state. The neutron structure also shows that the H<sub>2</sub> ligand is localized at two orientations on cobalt <i>trans</i> to the boron. This localization in the solid state contrasts with the results from ENDOR spectroscopy that show that the H<sub>2</sub> ligand freely rotates about the Co‒H<sub>2</sub> axis in frozen solution. Finally, the (<b>TPB</b>)Fe system, as well as related <i>tris</i>-phosphino-iron complexes that contain a different apical ligand unit (Si, PhB, C, and N) in place of the boron in (<b>TPB</b>)Fe, were studied for CO<sub>2</sub> hydrogenation chemistry. The (<b>TPB</b>)Fe system is not catalytically competent, while the silicon, borate, carbon variants, (<b>SiP<sup>R</sup><sub>3</sub></b>)Fe, (<b>PhBP<sup><i>i</i>Pr</sup><sub>3</sub></b>)Fe, and (<b>CP<sup><i>i</i>Pr</sup><sub>3</sub></b>)Fe, respectively, are catalysts for the hydrogenation of CO<sub>2</sub> to formate and methylformate. The hydricity of the CO<sub>2</sub> reactive species in the silatrane system (<b>SiP<sup><i>i</i>Pr</sup><sub>3</sub></b>)Fe(N<sub>2</sub>)(H) has been experimentally estimated. |
author |
Fong, Henry |
spellingShingle |
Fong, Henry Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis |
author_facet |
Fong, Henry |
author_sort |
Fong, Henry |
title |
Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis |
title_short |
Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis |
title_full |
Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis |
title_fullStr |
Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis |
title_full_unstemmed |
Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis |
title_sort |
metallaboratrane facilitated e‒h bond activation and hydrogenation catalysis |
publishDate |
2015 |
url |
https://thesis.library.caltech.edu/8746/13/Fong_Henry_2015_thesis.pdf Fong, Henry (2015) Metallaboratrane Facilitated E‒H Bond Activation and Hydrogenation Catalysis. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9TX3C9P. https://resolver.caltech.edu/CaltechTHESIS:12152014-181907516 <https://resolver.caltech.edu/CaltechTHESIS:12152014-181907516> |
work_keys_str_mv |
AT fonghenry metallaboratranefacilitatedehbondactivationandhydrogenationcatalysis |
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