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Nuclear magnetic resonance-paramagnetic relaxation enhancements: Influence of spatial quantization of the electron spin when the zero-field splitting energy is larger than the Zeeman energy

机译:核磁共振 - 顺磁性松弛增强:当零场分裂能量大于塞曼能量时电子旋转的空间量化的影响

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摘要

Dissolved paramagnetic ions generally provide an efficient mechanism for the relaxation of nuclear spins in solution, a phenomenon called the nuclear magnetic resonance-paramagnetic relaxation enhancement (NMR-PRE). Metal ions with electron spins S ≥ 1S⩾1 exhibit rich NMR relaxation phenomena originating in the properties of the zero-field splitting (zfs) interaction, which vanishes for spin-½12 ions but which is nonzero for S ≥ 1S⩾1 ions in site symmetry lower than cubic. For S ≥ 1S⩾1 ions in the vicinity of the zfs-limit, i.e., at magnetic-field strengths low enough that the zfs energy exceeds the Zeeman energy, the NMR-PRE depends strongly on the detailed structure of the electron spin energy levels as well as on the spatial quantization of the spin motion. It is shown theoretically and experimentally that the NMR-PRE produced by integer spins can be influenced strongly by the small intradoublet zero-field splittings, i.e., the splittings between the components of the non-Kramers doublets, which are produced by noncylindrical components of the crystal field potential. These small splittings produce relatively low-frequency oscillations in the dipolar field associated with 〈〉〈Sẑ〉 (the spin component along the molecule-fixed ẑ axis). These motions decouple the nuclear spin from the electron spin, thereby depressing, in some cases very strongly, the NMR-PRE. The presence of a relatively small Zeeman field, comparable in magnitude to the intradoublet spacing but small compared to the larger interdoublet zfs splittings, causes a major change in the spin wave functions which has profound effects on the motions of the electron spin. When the Zeeman energy exceeds the small zfs splitting, the oscillatory motion of 〈〉〈Sẑ〉 damps out, with the result that the electron spin couples more effectively to the nuclear spin, providing a more efficient NMR relaxation pathway. NMR-PRE data are presented for the S = 1S=1 complex Ni(II)(o-pda)2Cl2Ni(II)(o-pda)2Cl2 (o-pda = ortho-phenylenediamine)(o-pda=ortho-phenylenediamine) which confirm the importance of the splitting of the mS = ±1mS=±1 non-Kramers doublet on the NMR relaxation efficiency. The zfs E-parameter was measured from the NMR data to be ∣E∣ = 0.26 cm−1.∣E∣=0.26cm−1. The S = 2S=2 spin system, Mn(III)Mn(III)-tetraphenylporphyrin sulfonate, exhibits a related phenomenon which arises from the effects of a small zfs splitting, Δϵ±2,Δϵ±2, of the mS = ±2mS=±2 non-Kramers doublet that is caused by a fourfold rotational component of the crystal field potential. The splitting Δϵ±2Δϵ±2 was measured from NMR data to be 0.20 cm−1.0.20cm−1. © 1998 American Institute of Physics.
机译:溶解的顺磁离子通常提供一种有效的机制,用于在溶液中松弛核旋转,一种称为核磁共振 - 顺磁性松弛增强(NMR-PRE)的现象。具有电子旋转的金属离子S≥1S⩾1源自在零场分裂(ZFS)相互作用的性质的富NMR弛豫现象,其消失了旋转½12离子,但在现场的S≥1S⩾1离子是非零的非零对称低于立方体。对于ZFS限制附近的S≥1S⩾1离子,即在足够低的磁场强度下,ZFS能量超过塞曼能量,NMR-PRE在电子旋转能级的详细结构上强烈取决于强烈的结构以及旋转运动的空间量化。据理论和实验显示,NMR-PRE产生由整数自旋可以由小intradoublet零场分裂,强烈影响即,非克拉默斯双峰,其通过的非圆柱形部件产生的各部件之间的分裂水晶场势。这些小分离器在与<> 沿分子固定ẑ轴的旋转部件相关的偶极字段中产生相对低频的振荡。这些动作从电子旋转中脱离核旋转,从而在某些情况下令人沮丧,非常强烈地,NMR-pre。与较大的室内布置ZFS分离相比,与较大的Zeeman场相比,较小的Zeeman场的存在相当,但与较大的室内布置ZFS分配相比,引起自旋波函数的主要变化,这对电子旋转的运动产生了深远的影响。当塞曼能量超过小ZFS分裂时,<> 潮湿的振荡运动,结果是电子旋转更有效地耦合到核旋转,提供更有效的NMR松弛途径。 S = 1s = 1个复数Ni(II)(O-PDA)2Cl 2(OI-PDA)2Cl 2(O-PDA =邻苯二胺)(O-PDA =邻苯二胺)通过在NMR弛豫效率上确认将MS =±1ms的分裂=±1非克拉姆双击的重要性。从NMR数据测量ZFS E-参数| E2 = 0.26cm-1. | = 0.26cm-1。 S = 2s = 2旋转系统,Mn(III)Mn(III)-Taphenyl卟啉磺酸盐,其具有与MS =±2ms的小ZFS分裂,Δε±2,Δε±2的效果产生的相关现象=±2非kramers双层,其由晶体场电位的四倍旋转分量引起。将分裂Δε±2Δε±2从NMR数据测量为0.20cm-1.0.20cm-1。 ©1998美国物理研究所。

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