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Catalytic conversion of nitrogen to ammonia by an iron model complex.

机译:铁模型配合物将氮催化转化为氨。

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摘要

Threefold symmetric Fe phosphine complexes have been used to model the structural and functional aspects of biological N2 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 N2H4, NH3, and NH2-. These complexes are all high spin S = 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 NH3 and uptake of N2. These stoichiometric transformations represent the final steps in potential N2 fixation schemes.;Treatment of an anionic FeN2 complex with excess acid also results in the formation of some NH3, suggesting the possibility of a catalytic cycle for the conversion of N2 to NH3 mediated by Fe. Indeed, use of excess acid and reductant results in the formation of seven equivalents of NH3 per Fe center, demonstrating Fe mediated catalytic N2 fixation with acids and protons for the first time. Numerous control experiments indicate that this catalysis is likely being mediated by a molecular species.;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.;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 N2 fixation are feasible in this system.
机译:三倍对称的Fe膦配合物已被用来模拟固氮酶对生物N2固定的结构和功能方面。合成了处于形式氧化态Fe(II)Fe(II),Fe(II)/ Fe(I)和Fe(I)/ Fe(I)的低价桥接Fe-S-Fe络合物光谱和磁行为。已合成了一系列阳离子三膦硼烷(TPB)连接的Fe络合物,并显示出它们与包括N2H4,NH3和NH2-在内的各种含氮配体结合的能力。这些络合物都是高自旋S = 3/2,并显示出该自旋态典型的EPR和磁特性。此外,末端酰胺的连续质子化和还原序列导致NH 3的损失和N 2的吸收。这些化学计量的转化代表了潜在的N2固定方案的最终步骤。用过量的酸处理阴离子FeN2配合物也会导致一些NH3的形成,这表明可能存在催化循环,以将N2转化为Fe介导的NH3。实际上,使用过量的酸和还原剂会导致每个Fe中心形成7个当量的NH3,这是首次证明Fe介导的酸和质子催化的N2固定。大量的对照实验表明,这种催化作用很可能是由分子种类介导的。还对许多其他与膦连接的膦配合物进行了催化测试,表明半不稳定的Fe-B相互作用对于催化作用至关重要。另外,已经研究了各种催化条件。这些研究进一步支持了分子种类的分配并描述了催化所需的一些条件。最后,对假定的催化中间体进行了组合光谱研究。这些研究集中于这种新物种作为hydrazido(2-)配合物的分配。这种物质已经在第6组金属上获知了一段时间,但这代表了该配体在Fe上的首次表征。进一步的光谱研究表明,该物种存在于催化混合物中,这表明在该系统中,远端固定N2的机理的第一步是可行的。

著录项

  • 作者

    Anderson, John S.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Inorganic chemistry.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 260 p.
  • 总页数 260
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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