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 S̄. When the zfs energy is large compared to the Zeeman energy (the zfs limit), the precessional motion of S̄ 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 infl...
Paramagnetic metal ions accelerate nuclear spin relaxation; this effect is widely used for distance ...
The electron spin relaxation times measured in ESR spectroscopy are physically distinct from the ele...
The metalloporphyrins, Me-TSPP [Me = Cr(III)Me=Cr(III), Mn(III), Mn(II), Fe(III), and TSPP=meso-(tet...
Effects due to the nonuniaxial part of the zero field splitting (ZFS) tensor on NMR relaxation enhan...
The enhancement of nuclear spin relaxation rate R1m that is produced by paramagnetic metal ions in s...
Paramagnetic species in solution enhance nuclear spin relaxation rates in nuclear magnetic resonance...
The enhancement of nuclear magnetic resonance (NMR) relaxation rates produced by paramagnetic solute...
Dissolved paramagnetic ions generally provide an efficient mechanism for the relaxation of nuclear s...
The influence of zero field splitting (zfs) interactions on the magnetic field dispersion profile of...
Expressions are derived describing nuclear spin relaxation in paramagnetic salt solutions under cond...
Paramagnetic species in solution considerably enhance nuclear spin relaxation rates in nuclear magne...
The influence of ZFS interactions on the NMR paramagnetic relaxation enhancement (NMR-PRE) produced ...
Expressions for the dipolar nuclear-spin relaxation rates in paramagnetic salt solutions have been d...
Electron spin relaxation of transition metal ions with spin S ≥ 1S⩾1 results primarily from thermal ...
Spin dynamics (SD) methods have been developed to compute NMR paramagnetic relaxation enhancements (...
Paramagnetic metal ions accelerate nuclear spin relaxation; this effect is widely used for distance ...
The electron spin relaxation times measured in ESR spectroscopy are physically distinct from the ele...
The metalloporphyrins, Me-TSPP [Me = Cr(III)Me=Cr(III), Mn(III), Mn(II), Fe(III), and TSPP=meso-(tet...
Effects due to the nonuniaxial part of the zero field splitting (ZFS) tensor on NMR relaxation enhan...
The enhancement of nuclear spin relaxation rate R1m that is produced by paramagnetic metal ions in s...
Paramagnetic species in solution enhance nuclear spin relaxation rates in nuclear magnetic resonance...
The enhancement of nuclear magnetic resonance (NMR) relaxation rates produced by paramagnetic solute...
Dissolved paramagnetic ions generally provide an efficient mechanism for the relaxation of nuclear s...
The influence of zero field splitting (zfs) interactions on the magnetic field dispersion profile of...
Expressions are derived describing nuclear spin relaxation in paramagnetic salt solutions under cond...
Paramagnetic species in solution considerably enhance nuclear spin relaxation rates in nuclear magne...
The influence of ZFS interactions on the NMR paramagnetic relaxation enhancement (NMR-PRE) produced ...
Expressions for the dipolar nuclear-spin relaxation rates in paramagnetic salt solutions have been d...
Electron spin relaxation of transition metal ions with spin S ≥ 1S⩾1 results primarily from thermal ...
Spin dynamics (SD) methods have been developed to compute NMR paramagnetic relaxation enhancements (...
Paramagnetic metal ions accelerate nuclear spin relaxation; this effect is widely used for distance ...
The electron spin relaxation times measured in ESR spectroscopy are physically distinct from the ele...
The metalloporphyrins, Me-TSPP [Me = Cr(III)Me=Cr(III), Mn(III), Mn(II), Fe(III), and TSPP=meso-(tet...