Journal
JOURNAL OF MAGNETIC RESONANCE
Volume 215, Issue -, Pages 34-49Publisher
ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jmr.2011.12.009
Keywords
Solid-state NMR; Quadrupolar nuclei; Distance measurement; S-RESPDOR; S-REAPDOR; Saturation pulse; Adiabatic pulse
Funding
- Region Nord/Pas de Calais
- Europe (FEDER)
- CNRS
- French Minister of Science [ANR-2010-JCJC-0811-01]
- USTL
- ENSCL
- CortecNet
- Bruker BIOSPIN
- [FR-3050]
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We present a detailed analysis of the Symmetry-based Resonance-Echo Saturation-Pulse DOuble-Resonance (S-RESPDOR) method in order to measure the inter-nuclear distances between spin-1/2 and quadrupolar nuclei. This recently introduced sequence employs a symmetry-based recoupling scheme on the observed spin-1/2 channel and a saturation pulse on the quadrupolar channel. This method requires a low radio-frequency (rf) field, is compatible with high MAS frequency and allows a rapid determination of inter-nuclear distances by fitting the experimental signal fraction to an analytical expression. Here, we analyze in detail the influence of the various experimental and spin-interaction parameters on the S-RESPDOR signal fraction and the measured distance. We show that the S-RESPDOR signal fraction only depends on the quadrupole interaction and the inter-nuclear distance. We demonstrate that the required rf-field on the quadrupolar channel is smaller than that required for an adiabatic-passage pulse in REAPDOR-type experiments. The only limitation of the method is the requirement of accurate rotor synchronization between the two parts of the dipolar recoupling sequences. Using S-RESPDOR, we have quantitatively measured a P-31-V-51 distance of 357 pm in a mono-vanadium-substituted polyoxo-tungstate, K4PVW11O40, from the Keggin family and a C-13-Zn-67 distance of 286 pm in [80%-Zn-67]zinc [1-C-13]acetate. These results show that S-RESPDOR can be employed in the challenging cases of quadrupolar nuclei exhibiting a high spin number and either large chemical-shift anisotropy (V-51) or low gyromagnetic ratio (Zn-67). (C) 2011 Elsevier Inc. All rights reserved.
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