Synthetic and mechanistic study of catalytic dintrogen reduction
Name
77281794-MIT.pdf
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f9b5b3b36c453cfaeac6087d35ce4991
Author(s)
Weare, Walter Warren
Advisor(s)
Richard R. Schrock.
Date Issued
2006
Publisher
Massachusetts Institute of Technology
Abstract
The dinitrogen reduction capability of a series of new triamidoamine based molybdenum compounds has been studied. The synthesis of a number of different triamidoamine ligands, and their resulting molybdenum compounds, is described. While symmetric variants containing electron-withdrawing hexaisopropyl terphenyl substituents can successfully catalyze dinitrogen reduction to ammonia, only the most bulky unsymmetric "hybrid" compounds can facilitate this reaction. Further study of these systems reveals a different pathway for catalyst failure than had previously been observed. It was discovered that, at least for the smaller ligands, a base-catalyzed hydrogenase reaction occurs at a rate much faster than that of ammonia formation. The Mo(IV) diazenido (LMoN2H) compound undergoes net H. loss, forming the Mo(III) dinitrogen (LMoN2) species with concomitant release of H2. Examination of the "parent" system has also revealed previously unknown intricacies of the dinitrogen reduction reaction. By developing a means to measure H2 formation, we are now able to fully quantify the reducing equivalents added to our system.
(cont.) This supports our belief that only NH3 and H2 are formed during catalysis. In addition, control experiments demonstrate that the proton source typically utilized for catalytic study, [2,6-lutidinium][BAr4'], can be reductively coupled under catalytic conditions. Therefore an acid that avoids this coupling reaction ([2,4,6-collidinium][BAr4']) is now utilized during most catalytic experiments.
Description
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Chemistry, 2006.
Vita.
Includes bibliographical references.
Subjects
Chemistry.
MIT Department
Massachusetts Institute of Technology. Department of Chemistry
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