The large paramagnetic shifts and short relaxation times resulting from the presence of a paramagnetic centre complicate NMR data acquisition and interpretation in solution. As a result, NMR analysis of paramagnetic complexes is limited in comparison to diamagnetic compounds and often relies on theoretical models. We report a toolbox of 1D (H, proton-coupled C, selective H-decoupling C, steady-state NOE) and 2D (COSY, NOESY, HMQC) paramagnetic NMR methods that enables unprecedented structural characterisation and in some cases, provides more structural information than would be observable for a diamagnetic analogue. We demonstrate the toolbox's broad versatility for fields from coordination chemistry and spin-crossover complexes to supramolecular chemistry through the characterisation of Co and high-spin Fe mononuclear complexes as well as a CoL cage.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7590057PMC
http://dx.doi.org/10.1002/anie.202008439DOI Listing

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