Artefact-free broadband 2D NMR for separation of quadrupolar and paramagnetic shift interactions

https://doi.org/10.1016/j.ssnmr.2019.05.001Get rights and content
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Highlights

  • Two new sequences are proposed to separate the paramagnetic shift and quadrupolar interactions.

  • They incorporate adiabatic pulses to eliminate spectral artefacts and increase bandwidth.

  • Quadrupolar and shift parameters determined for deuterated CuCl2⋅2H2O.

  • For two different BaTiO3-xHy samples distinct deuteride environments are characterized.

Abstract

Two new two-dimensional, broadband, solid-state NMR experiments for separating and correlating the quadrupolar and shift interactions of spin I=1 nuclei in paramagnetic systems are proposed. The new pulse sequences incorporate the short, high-power adiabatic pulses (SHAPs) into the shifting d-echo experiment of Walder et al. [J. Chem. Phys., 142, 014201 (2015)], in two different ways, giving double and quadruple adiabatic shifting d-echo sequences. These new experiments have the advantage over previous methods of both suppressing spectral artefacts due to pulse imperfections, and exhibiting a broader excitation bandwidth. Both experiments are analysed with theoretical calculations and simulations, and are applied experimentally to the 2H NMR of deuterated CuCl2 ⋅2H2O, and two deuterated samples of the ion conductor oxyhydride BaTiO3−xHy prepared using two different methods. For the CuCl2 ⋅2H2O sample, both new methods obtain very high-quality spectra from which the parameters describing the shift and quadrupolar interaction tensors, and their relative orientation, were extracted. The two BaTiO3−xHy samples exhibited different local hydride environments with different tensor parameters. The 2H spectra of these oxyhydrides exhibit inhomogeneous broadening of the 2H shifts, and so whilst the quadrupolar interaction parameters were easily extracted, the measurement of the shift parameters was more complex. However, effective shift parameters were extracted, which combine the effects of both the paramagnetic shift tensor and the inhomogeneous broadening.

Keywords

Paramagnetic NMR
2H solid-state NMR
Adiabatic pulses
Solid oxyhydride

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