首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >The correlation of redox potential, HOMO energy, and oxidation state in metal sulfide clusters and its application to determine the redox level of the FeMo-co active-site cluster of nitrogenase
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The correlation of redox potential, HOMO energy, and oxidation state in metal sulfide clusters and its application to determine the redox level of the FeMo-co active-site cluster of nitrogenase

机译:金属硫化物簇中氧化还原电位,HOMO能级和氧化态的相关性及其在确定FeMo-co活性位点固氮酶簇中氧化还原水平中的应用

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This paper describes a procedure that permits the total charge state (i.e., oxidation state) of a complex molecule to be obtained from its redox potential data by comparison with good data ( both charge state and redox potential) for reference compounds that are chemically similar. The link between the reference data and the unknown compound is made by the calculated energies of the Fermi level or highest occupied molecular orbital ( HOMO). The HOMO energies are calculated by unrestricted density functional methods (DMol) for the reference compounds in their known charge states, and a graphical correlation of HOMO energy and redox potential for oxidation ( corresponding to loss of an electron from the HOMO) is constructed. The measured redox potential of the unknown is then applied to the correlation to yield the HOMO energy of the unknown, against which the calculated HOMO energies for various charge states of the unknown are assessed. This method is generally applicable. Using 26 reference data, the method is used here to determine the resting redox state, [NFe6MoS9](0), of the core of the FeMo cofactor (FeMo-co, bound to the MoFe protein) which is the active site of nitrogen-fixing enzymes. The analysis also shows that if the atom at the center of FeMo-co is C rather than N, then FeMo-co must be protonated in its resting state, but if FeMo-co is N-centered, it would not be protonated in the resting state.
机译:本文介绍了一种程序,该程序允许通过与化学相似的参考化合物的良好数据(电荷状态和氧化还原电势)进行比较,从其氧化还原电势数据中获得复杂分子的总电荷状态(即氧化态)。参考数据与未知化合物之间的联系是由费米能级或最高占据分子轨道(HOMO)的计算出的能量建立的。通过不受限制的密度泛函方法(DMol)计算参考化合物在已知电荷状态下的HOMO能量,并构建HOMO能量与氧化还原电势的图形相关性(对应于电子从HOMO的损失)。然后将所测量的未知物的氧化还原电势应用于相关性,以产生未知物的HOMO能量,据此评估未知物各种电荷状态下计算出的HOMO能量。此方法通常适用。根据26个参考数据,此处使用该方法确定FeMo辅因子核心(FeMo-co,与MoFe蛋白结合)的静止氧化还原状态[NFe6MoS9](0),该状态是氮的活性位点。固定酶。分析还显示,如果FeMo-co中心的原子是C而不是N,则FeMo-co必须在其静止状态下被质子化,但是如果FeMo-co在N中心,则它不会在N中被质子化。静止状态。

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