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首页> 外文期刊>Journal of the American Chemical Society >Interaction of Radical Pairs Through-Bond and Through-Space: Scope and Limitations of the Point-Dipole Approximation in Electron Paramagnetic Resonance Spectroscopy
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Interaction of Radical Pairs Through-Bond and Through-Space: Scope and Limitations of the Point-Dipole Approximation in Electron Paramagnetic Resonance Spectroscopy

机译:穿过和穿过空间的自由基对的相互作用:电子顺磁共振谱中点-偶极近似的范围和局限性

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摘要

The validity of the popular point-dipole approximation for interpretation of the zero-field splitting (ZFS) parameter (D-value) in EPR spectroscopy is studied. This approximation is of central importance for the determination of distances by analysis of EPR data. In this work, a detailed experimental (EPR spectroscopy and X-ray crystallography) and theoretical study for a model system (2,2',5,5'-tetra(fert-butyl)-4,4'-bis(ethoxy-carbonyl)-3,3'-bipyrrolyl-1,1'-dioxyl) was performed to understand the scope and limitations of the point-dipole model in EPR spectroscopy. For this diradical, the radical-radical distance derived with the point-dipole approximation deviates significantly (by ~40%) from the results derived from the X-ray analysis. Explicit quantum chemical calculation of the D-value on the basis of B3LYP density functional calculations leads to excellent quantitative agreement with the measured D-value. The quantitative accuracy of the employed methodology was confirmed for two additional systems that have previously been experimentally characterized. We therefore analyzed the contributions to the D-value of the target system in detail. This analysis leads to insight into the reasons for the failure of the point-dipole approximation. The analysis was then extended to an in silico study of five classes of model systems. Linkers of varying length and bond saturation were introduced between the radical-carrying groups. This allows for the analysis of the distance dependence of the D-parameter as well as the through-bond and through-space spin-spin interaction. From these results we established the limitations of the point-dipole approximation. The results of this analysis demonstrate that even very modest amounts of spin delocalization can cause significant deviations from pure point-dipole behavior and consequently cause the EPR derived distances to deviate from the N-O midpoint distance by up to several angstroms. If unsaturated linkers are used, the distance dependence of D does not follow the inverse cubic behavior predicted by the point-dipole model. However, for commonly used nonaromatic nitroxide rings connected by a saturated linker, the point-dipole approximation works well. Among the various point-dipole variants tested in this work for delocalized spins, the most successful one is based on distributed point-dipoles with spin populations derived from quantum chemical calculations. The distance dependence of the isotropic Heisenberg exchange parameter J has also been studied theoretically. The decay was found to be monoexponential with a decay constant of ~1 A~(-1). Thus at linker lengths between 6-8 carbon atoms between a nitroxide radical pair, a switch from the strong to the weak exchange limit is predicted.
机译:研究了流行的点偶极子近似对于解释EPR光谱中零场分裂(ZFS)参数(D值)的有效性。这种近似对于通过分析EPR数据确定距离至关重要。在这项工作中,对模型系统(2,2',5,5'-四(叔丁基)-4,4'-双(乙氧基-)进行了详细的实验(EPR光谱学和X射线晶体学)和理论研究。进行羰基)-3,3'-联吡咯基-1,1'-二氧基)以了解EPR光谱中点偶极子模型的范围和局限性。对于该双自由基,通过点-偶极近似得出的自由基与自由基的距离与X射线分析得出的结果相差很大(约40%)。根据B3LYP密度泛函计算对D值进行显式量子化学计算,可以得出与所测D值极好的定量一致性。对于先前已经通过实验表征的另外两个系统,确认了所采用方法的定量准确性。因此,我们详细分析了对目标系统D值的贡献。通过这种分析,可以深入了解点偶极子近似失败的原因。然后将分析扩展到对五类模型系统的计算机模拟研究。在带有自由基的基团之间引入了不同长度和键饱和度的连接基。这样就可以分析D参数的距离依赖性以及键合和空间自旋-自旋相互作用。从这些结果,我们确定了点偶极子近似的局限性。该分析的结果表明,即使是非常少量的自旋离域,也可能导致与纯点-偶极子行为的显着偏差,并因此导致EPR得出的距离与N-O中点距离偏离最多几埃。如果使用不饱和连接子,则D的距离依赖性不遵循点偶极子模型预测的逆立方行为。但是,对于通过饱和接头连接的常用非芳族氮氧化物环,点偶极近似效果很好。在这项针对离域自旋的测试中的各种点偶极子变体中,最成功的一种是基于具有自旋群的分布点偶极子,这些自旋子群是从量子化学计算得出的。各向同性海森堡交换参数J的距离相关性也在理论上进行了研究。发现该衰变是单指数的,衰变常数为〜1 A〜(-1)。因此,在氮氧化物自由基对之间的6-8个碳原子之间的接头长度处,预测了从强交换极限到弱交换极限的转换。

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  • 来源
    《Journal of the American Chemical Society 》 |2009年第29期| 10092-10106| 共15页
  • 作者单位

    Institut fuer Physikalische und Theoretische Chemie, Universitaet Bonn, Wegelerstrasse 12, 53115 Bonn Germany and Max-Planck Institute for Bioinorganic Chemistry, Stiftstr. 34-36, D-45470 Muelheim an der Ruhr, Germany;

    Medical Biotechnology Center, University of Maryland Biotechnology Institute and Department of Physiology, University of Maryland School of Medicine, Baltimore, Maryland 21201;

    Medical Biotechnology Center, University of Maryland Biotechnology Institute and Department of Physiology, University of Maryland School of Medicine, Baltimore, Maryland 21201 Department of Pharmaceutical Sciences and Center for EPR Imaging, University of Maryland School of Pharmacy, Baltimore, Maryland 21201;

    Department of Chemistry and Biochemistry and Center for EPR Imaging, University of Denver, Denver, Colorado 80208-2436;

    Department of Chemistry and Biochemistry and Center for EPR Imaging, University of Denver, Denver, Colorado 80208-2436;

    Department of Chemistry and Biochemistry and Center for EPR Imaging, University of Denver, Denver, Colorado 80208-2436;

    Department of Chemistry and Biochemistry and Center for EPR Imaging, University of Denver, Denver, Colorado 80208-2436;

    Institut fuer Physikalische und Theoretische Chemie, Universitaet Bonn, Wegelerstrasse 12, 53115 Bonn Germany and Max-Planck Institute for Bioinorganic Chemistry, Stiftstr. 34-36, D-45470 Muelheim an der Ruhr, Germany;

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