Dipolar and Contact Paramagnetic NMR Chemical Shifts in AnIVComplexes with Dipicolinic Acid Derivatives
Author(s) -
Md. Ashraful Islam,
Matthieu Autillo,
Laetitia Guérin,
Christelle Tamain,
Philippe Moisy,
Hélène Bolvin,
Claude Berthon
Publication year - 2022
Publication title -
inorganic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 233
eISSN - 1520-510X
pISSN - 0020-1669
DOI - 10.1021/acs.inorgchem.2c00845
Subject(s) - chemistry , fermi contact interaction , paramagnetism , density functional theory , hyperfine structure , chemical shift , dipicolinic acid , crystallography , coupling constant , actinide , ab initio , magnetic moment , anisotropy , solid state nuclear magnetic resonance , computational chemistry , nuclear magnetic resonance , inorganic chemistry , atomic physics , condensed matter physics , physics , botany , spore , particle physics , organic chemistry , quantum mechanics , biology
Actinide +IV complexes (An IV = Th IV , U IV , Np IV , and Pu IV ) with two dipicolinic acid derivatives (DPA and Et-DPA) have been studied by 1 H and 13 C NMR spectroscopies and first-principles calculations. The Fermi contact and dipolar contributions to the actinide-induced shifts (AIS) are evaluated from a temperature dependence analysis, combined with ab initio results. It allows an experimental estimation of the axial anisotropy of the magnetic susceptibility Δχ ax and of the hyperfine coupling constants of the NMR-active nuclei. Due to the compactness of the coordination sphere, the magnetic anisotropy of the paramagnetic center is small, and this makes the contact contribution to be the dominant one, even on the remote atoms. The sign of the hyperfine coupling constants and related spin densities is alternating on the nuclei of the ligand cycle, denoting a preponderant spin polarization mechanism. This is well reproduced by unrestricted density functional theory (DFT) calculations. Those values are furthermore slightly decreasing in the actinide series, which indicates a small decrease of the covalency from U IV o Pu IV .
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