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Effect of zero field splitting interactions on the paramagnetic relaxation enhancement of nuclear spin relaxation rates in solution

机译:零场分裂相互作用对溶液中核自旋弛豫率的顺磁性弛豫增强的影响

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摘要

The enhancement of nuclear spin relaxation rate R1m that is produced by paramagnetic metal ions in solution (the NMR‐PRE) has been investigated for electron spin systems with S=1 using recently developed relaxation theory that incorporates both Zeeman and zero field splitting (zfs) interactions of arbitrary magnitude in the electron spin Hamiltonian. The zfs interaction gives rise to important qualitative features which have no analog in the Zeeman‐limit theory. The three principal physical phenomena responsible for these effects are (1) alterations in the geometry of the magnetic dipole–dipole coupling energy due to requantization of the electron spin from laboratory to molecular axes; (2) the crossing or ‘‘pinching’’ of spin energy levels that occurs in the regime of field strengths between the zfs and Zeeman limits; and (3) an effective magnetic field dependence in the reorientational correlation time that results from a change in the appropriate definition of this quantity in the intermediate regime. In the zfs limit and in the intermediate regime, the field dispersion profile depends strongly on the position of the nuclear spin with respect to the molecular coordinate axes. For equatorial positions of the nuclear spin, the principle qualitative feature of the dispersion profile is a strong increase in R1m with increasing field strength coupled, in most cases, with a shallow local R1m maximum; both features are centered near the cross‐over field between the limits. For axial positions, the profile exhibits a feature that is superficially similar to those characteristic of Zeeman‐limit theory, but which is fundamentally different in quantitative properties and in physical origin. As a test of theoretical predictions, the experimental magnetic field profile of the NMR‐PRE of the hexaquo‐Ni(II) cation, an S=1 model system that has previously been studied extensively, has been reinterpreted. It is shown that the major qualitative features of the experimental field profile result specifically from physical effects of the zfs interaction and are closely related to the phenomenon of requantization of the electron spin in the intermediate regime.
机译:通过溶液中的顺磁金属离子产生的核自旋弛豫率R1m的增强已经研究了使用最近开发的松弛理论的电子旋转系统,其中包括塞曼和零场分裂(ZFS)电子旋转哈密尔顿中任意幅度的相互作用。 ZFS相互作用引起了Zeeman-Limit理论中没有类似物的重要定性特征。负责这些效果的三个主要物理现象是(1)磁性偶极子 - 偶极耦合能量的几何形状的改变,因为电子旋转从实验室到分子轴的电子旋转; (2)在ZFS和Zeeman限制的场地强度的制度中发生的跨越或“捏”的旋转能级; (3)在中间方案中的适当定义的改变中产生的重新定位相关时间的有效磁场依赖性。在ZFS限制和中间区域中,场分散轮廓强烈地取决于核旋转相对于分子坐标轴的位置。对于核旋转的赤道位置,色散分布的原理定性特征是R1M的强烈增加,随着大多数情况下,耦合的场强越来越大的局部强度,具有浅局部R1m;这两种功能都以极限之间的交叉场靠近。对于轴向位置,型材表现出与塞曼限制理论的那些特征的特征,但在定量性质和物理来源中基本上不同。作为理论预测的测试,重新诠释了先前研究的六曲-NI(ii)阳离子,六峰-NI(II)阳离子,S = 1模型系统的实验磁场分布。结果表明,实验场轮廓的主要定性特征明确来自ZFS相互作用的物理效应,与中间方案中电子旋转的重新化现象密切相关。

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    Robert R. Sharp;

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  • 年度 1993
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