NUCLEAR-SPIN RELAXATION DUE TO PARAMAGNETIC SPECIES IN SOLUTION - EFFECT OF ANISOTROPY IN THE ZERO-FIELD SPLITTING TENSOR

被引:38
作者
SHARP, RR
机构
[1] Department of Chemistry, University of Michigan, Ann Arbor
关键词
D O I
10.1063/1.464848
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The NMR (nuclear magnetic resonance) paramagnetic relaxation enhancement (NMR-PRE) that is produced by paramagnetic solutes in solution has been investigated theoretically with respect to the influence of zero field splitting (zfs) interactions in the electron spin Hamiltonian, in particular with respect to the effects of anisotropy in the zfs tensor. These effects are a physical consequence of the influence of the zfs on the motion of the electron spin vector SBAR. When the zfs energy is large compared to the Zeeman energy (the zfs limit), the precessional motion of SBAR is quantized in the molecule-fixed coordinate system that diagonalizes the zfs tensor. The uniaxial portion of the zfs tensor influences the NMR-PRE primarily through its influence on the quantization axes of SBAR; the characteristic behavior of the NMR-PRE under the influence of a uniaxial zfs has been described in detail previously. Anisotropy in the zfs tensor induces oscillatory motion in S(z). This motion has a profound influence on the NMR-PRE, the major part of which normally arises from low frequency components of the local magnetic field that are associated with S(z) rather than from the rapidly precessing local fields that are associated with the transverse components S+/-. For this reason, the NMR-PRE is a sensitive function of zfs anisotropy, which acts to lower the NMR-PRE below the value that occurs in the uniaxial situation. The magnitude of this effect depends on the ratio (E/D) of the anisotropic and uniaxial zfs parameters, on the reduced dipolar correlation time, and on the location of the nuclear spin in the molecular coordinate frame. A second physical effect of zfs anisotropy on the NMR-PRE arises from a resonance between the electron spin precessional motion in the transverse plane with the precessional motion that is perpendicular to the transverse plane (the latter due to zfs anisotropy). Resonance of these motions, which occurs spin energy levels crossings, gives rise to low frequency transverse components of SBAR which result in a resonant increase in the NMR-PRE within a restricted range of E/D ratios.
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页码:6092 / 6101
页数:10
相关论文
共 28 条
[1]   THE ELECTRON-NUCLEUS DIPOLAR COUPLING IN SLOW ROTATING SYSTEMS .4. THE EFFECT OF ZERO-FIELD SPLITTING AND HYPERFINE COUPLING WHEN S = 5/2 AND I = 5/2 [J].
BANCI, L ;
BERTINI, I ;
BRIGANTI, F ;
LUCHINAT, C .
JOURNAL OF MAGNETIC RESONANCE, 1986, 66 (01) :58-65
[2]   ELECTRON-SPIN AND NUCLEAR-SPIN RELAXATION IN AN INTEGER SPIN SYSTEM, TRIS-(ACETYLACETONATO)MN(III) IN SOLUTION [J].
BAYBURT, T ;
SHARP, RR .
JOURNAL OF CHEMICAL PHYSICS, 1990, 92 (10) :5892-5899
[3]   LOW-TEMPERATURE MAGNETIZATION STUDY ON MANGANESE(III) PORPHYRINS [J].
BEHERE, DV ;
MARATHE, VR ;
MITRA, S .
CHEMICAL PHYSICS LETTERS, 1981, 81 (01) :57-61
[4]   MAGNETIC-SUSCEPTIBILITY STUDY AND GROUND-STATE ZERO-FIELD SPLITTING IN MANGANESE(III) PORPHYRINS [J].
BEHERE, DV ;
MITRA, S .
INORGANIC CHEMISTRY, 1980, 19 (04) :992-995
[6]   DIPOLE-DIPOLE NUCLEAR-SPIN RELAXATION - A CROSS-CORRELATION CORRECTION TO THE SOLOMON-BLOEMBERGEN EQUATION FOR T2 [J].
BENETIS, N ;
KOWALEWSKI, J ;
NORDENSKIOLD, L ;
WENNERSTROM, H ;
WESTLUND, PO .
MOLECULAR PHYSICS, 1983, 50 (03) :515-530
[7]   NUCLEAR-SPIN RELAXATION IN PARAMAGNETIC SYSTEMS - THE SLOW MOTION PROBLEM FOR ELECTRON-SPIN RELAXATION [J].
BENETIS, N ;
KOWALEWSKI, J ;
NORDENSKIOLD, L ;
WENNERSTROM, H ;
WESTLUND, PO .
MOLECULAR PHYSICS, 1983, 48 (02) :329-346
[8]   PROTON RELAXATION TIMES IN PARAMAGNETIC SOLUTIONS [J].
BLOEMBERGEN, N .
JOURNAL OF CHEMICAL PHYSICS, 1957, 27 (02) :572-573
[9]   PROTON RELAXATION TIMES IN PARAMAGNETIC SOLUTIONS EFFECTS OF ELECTRON SPIN RELAXATION [J].
BLOEMBERGEN, N ;
MORGAN, LO .
JOURNAL OF CHEMICAL PHYSICS, 1961, 34 (03) :842-&
[10]  
BLOEMBERGEN N, 1957, J CHEM PHYS, V27, P595, DOI 10.1063/1.1743781