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Observability of Paramagnetic NMR Signals at over 10 000 ppm Chemical Shifts

Jonas C. Ott, Elizaveta A. Suturina, Ilya Kuprov, Joscha Nehrkorn, Alexander Schnegg, Markus Enders, Lutz H. Gade

2021Angewandte Chemie International Edition31 citationsDOIOpen Access PDF

Abstract

Abstract We report an experimental observation of 31 P NMR resonances shifted by over 10 000 ppm (meaning percent range, and a new record for solutions), and similar 1 H chemical shifts, in an intermediate‐spin square planar ferrous complex [ t Bu (PNP)Fe‐H], where PNP is a carbazole‐based pincer ligand. Using a combination of electronic structure theory, nuclear magnetic resonance, magnetometry, and terahertz electron paramagnetic resonance, the influence of magnetic anisotropy and zero‐field splitting on the paramagnetic shift and relaxation enhancement is investigated. Detailed spin dynamics simulations indicate that, even with relatively slow electron spin relaxation ( T 1 ≈10 −11 s), it remains possible to observe NMR signals of directly metal‐bonded atoms because pronounced rhombicity in the electron zero‐field splitting reduces nuclear paramagnetic relaxation enhancement.

Topics & Concepts

ParamagnetismElectron nuclear double resonanceElectron paramagnetic resonancePulsed EPRChemistryRelaxation (psychology)Hyperfine structureChemical shiftNuclear magnetic resonanceSpin (aerodynamics)Condensed matter physicsSpin echoPhysical chemistryAtomic physicsPhysicsMagnetic resonance imagingMedicineRadiologyThermodynamicsPsychologySocial psychologyMagnetism in coordination complexesLanthanide and Transition Metal ComplexesElectron Spin Resonance Studies