Catalytic conversion of nitrogen to ammonia by an iron model complex
Data(s) |
2014
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Resumo |
<p>Threefold symmetric Fe phosphine complexes have been used to model the structural and functional aspects of biological N<sub>2</sub> fixation by nitrogenases. Low-valent bridging Fe-S-Fe complexes in the formal oxidation states Fe(II)Fe(II), Fe(II)/Fe(I), and Fe(I)/Fe(I) have been synthesized which display rich spectroscopic and magnetic behavior. A series of cationic tris-phosphine borane (TPB) ligated Fe complexes have been synthesized and been shown to bind a variety of nitrogenous ligands including N<sub>2</sub>H<sub>4</sub>, NH<sub>3</sub>, and NH<sub>2</sub><super>-</super>. These complexes are all high spin <italic>S</italic> = 3/2 and display EPR and magnetic characteristics typical of this spin state. Furthermore, a sequential protonation and reduction sequence of a terminal amide results in loss of NH<sub>3</sub> and uptake of N<sub>2</sub>. These stoichiometric transformations represent the final steps in potential N<sub>2</sub> fixation schemes.</p> <p>Treatment of an anionic FeN<sub>2</sub> complex with excess acid also results in the formation of some NH<sub>3</sub>, suggesting the possibility of a catalytic cycle for the conversion of N<sub>2</sub> to NH<sub>3</sub> mediated by Fe. Indeed, use of excess acid and reductant results in the formation of seven equivalents of NH<sub>3</sub> per Fe center, demonstrating Fe mediated catalytic N<sub>2</sub> fixation with acids and protons for the first time. Numerous control experiments indicate that this catalysis is likely being mediated by a molecular species.</p> <p>A number of other phosphine ligated Fe complexes have also been tested for catalysis and suggest that a hemi-labile Fe-B interaction may be critical for catalysis. Additionally, various conditions for the catalysis have been investigated. These studies further support the assignment of a molecular species and delineate some of the conditions required for catalysis.</p> <p>Finally, combined spectroscopic studies have been performed on a putative intermediate for catalysis. These studies converge on an assignment of this new species as a hydrazido(2-) complex. Such species have been known on group 6 metals for some time, but this represents the first characterization of this ligand on Fe. Further spectroscopic studies suggest that this species is present in catalytic mixtures, which suggests that the first steps of a distal mechanism for N<sub>2</sub> fixation are feasible in this system.</p> |
Formato |
application/pdf |
Identificador |
http://thesis.library.caltech.edu/7959/1/Anderson_John_Thesis2014.pdf Anderson, John Stuart (2014) Catalytic conversion of nitrogen to ammonia by an iron model complex. Dissertation (Ph.D.), California Institute of Technology. http://resolver.caltech.edu/CaltechTHESIS:09182013-164526961 <http://resolver.caltech.edu/CaltechTHESIS:09182013-164526961> |
Relação |
http://resolver.caltech.edu/CaltechTHESIS:09182013-164526961 http://thesis.library.caltech.edu/7959/ |
Tipo |
Thesis NonPeerReviewed |