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Computational, spectroscopic, and electrochemical studies of molybdoenzyme and hydrogenase active site inspired complexes.

机译:钼酶和加氢酶活性位点激发的复合物的计算,光谱和电化学研究。

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摘要

Production of H2 as an alternate fuel source requires the discovery of new, efficient, and cheap catalysts. Extensive studies on the development of active site analogues of the [FeFe] hydrogenase enzyme have been carried out for this reason. In our studies, electrochemistry, photoelectron spectroscopy and density functional theory calculations were utilized to develop and study the catalytic mechanisms for many catalysts that produce molecular hydrogen. These techniques have also been used to determine the factors that influence the correlation between gas-phase ionizations and solution-phase oxidations for a series of Tp*Mo(V) complexes.;Mechanistic studies have been carried out on two hydrogenase-inspired catalysts: [(eta5-C5H5)Fe(CO) 2]2 and (mu-1,2-benzenedithiolato)[Fe(CO)3] 2. Electrochemicstry and calculations indicate that both molecules enter into catalytic cycles from the reduction of the neutral procatalyst complexes. The molecules, after reduction, catalytically produce H2 from acids such as acetice acid and 4-tert-butylphenol through CECE mechanisms. During one of the studies, it was found that calculations and electrochemical simulations did not agree with the liturature pKa value for (eta 5-C5H5)Fe(CO)2H, which is one of the proposed species in the catalytic mechanism. The pKa of (eta 5-C5H5)Fe(CO)2H was redetermined experimentally and was found to be 26.7.;The aim of the third chapter is to make improvements on the catalytic activity of (mu-1,2-C6H4S2)[Fe(CO) 3]2 by perturbing the electronic structure through ligand exchanges. Two different phosphine ligands, triphenyl phosphine and 1,3,5-triaza-7-phosphaadamantane, were successfully substituted for CO ligands on the (mu-1,2-benzenedithiolato)Fe 2(CO)6 complex. The 1,2-benzenedithiolate ligand was also exchanged for 1,4-dimethyoxy-2,3-benzenedithiolate.;The last chapter focuses on complexes of the general form Tp*MoO(OX) 2 (where Tp* = hydrotris(3,5-dimethyl-1-pyrazolyl)borate and (OX) 2 = (OMe)2, (OEt)2, and (OnPr) 2 for alkoxide ligands, and (OX)2 = O(CH2) 3O, O(CH2)4O, and O[CH(CH3)CH 2CH(CH3)]O for diolato ligands). Oxidation potentials and first ionization energies are shown to be highly sensitive to the number of carbon atoms present in the diolato and alkoxide ligands. A linear correlation between the solution-phase oxidation potentials and the gas-phase ionization energies resulted in an unexpected slope of greater than unity. Density functional theory calculations indicated that cation reorganization energies ranged from 0.15--0.51 eV, and this unique correlation was a result of the large differences in the cation reorganization energies.
机译:氢气作为替代燃料的生产需要发现新型,高效和廉价的催化剂。因此,对[FeFe]氢化酶的活性位点类似物的开发进行了广泛的研究。在我们的研究中,利用电化学,光电子能谱和密度泛函理论计算来开发和研究许多产生分子氢的催化剂的催化机理。这些技术也已用于确定影响一系列Tp * Mo(V)配合物的气相电离和溶液相氧化之间的相关性的因素;已对两种加氢酶启发的催化剂进行了机理研究: [(eta5-C5H5)Fe(CO)2] 2和(mu-1,2-苯二硫代巯基] [Fe(CO)3] 2.电化学和计算表明,这两种分子都从中性原催化剂的还原而进入催化循环复合体。还原后,这些分子通过CECE机制从诸如乙酸和4-叔丁基苯酚之类的酸催化生成H2。在一项研究中,发现计算和电化学模拟与(eta 5-C5H5)Fe(CO)2H的文献pKa值不一致,这是催化机理中提出的物种之一。实验确定了(eta 5-C5H5)Fe(CO)2H的pKa为26.7。第三章旨在改进(mu-1,2-C6H4S2)的催化活性[ Fe(CO)3] 2通过配体交换扰动电子结构。两种不同的膦配体,三苯基膦和1,3,5-triaza-7-phosphaadamantane被成功取代了(mu-1,2-苯二硫代)Fe 2(CO)6络合物上的CO配体。 1,2-苯二硫代酸酯配体也被交换为1,4-二甲氧基-2,3-苯二硫代酸酯。;最后一章着重于一般形式为Tp * MoO(OX)2的配合物(其中Tp * = hydrotris(3, 5-二甲基-1-吡唑基)硼酸酯和(OX)2 =(OMe)2,(OEt)2,和(OnPr)2(对于醇盐配体),(OX)2 = O(CH2)3O,O(CH2) 4O,以及用于二醇基配体的O [CH(CH3)CH 2CH(CH3)] O)。氧化势和第一电离能对二醇基和醇盐配体中存在的碳原子数高度敏感。固溶相氧化电势与气相电离能之间的线性相关性导致意外的斜率大于1。密度泛函理论计算表明,阳离子重组能在0.15--0.51 eV范围内,这种独特的相关性是阳离子重组能差异很大的结果。

著录项

  • 作者

    Vannucci, Aaron K.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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