Published March 7, 2015 | Version v1
Journal article

Population transfer HMQC for half-integer quadrupolar nuclei

  • 1. National Center for Magnetic Resonance in Wuhan, State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences, Wuhan 430071 (China)
  • 2. Physics Department and Shanghai Key Laboratory of Magnetic Resonance, East China Normal University, Shanghai 200062 (China)
  • 3. Unit of Catalysis and Chemistry of Solids (UCCS), CNRS UMR-8181, University of Lille, 59652 Villeneuve d'Ascq (France)

Description

This work presents a detailed analysis of a recently proposed nuclear magnetic resonance method [Wang et al., Chem. Commun. 49(59), 6653-6655 (2013)] for accelerating heteronuclear coherence transfers involving half-integer spin quadrupolar nuclei by manipulating their satellite transitions. This method, called Population Transfer Heteronuclear Multiple Quantum Correlation (PT-HMQC), is investigated in details by combining theoretical analyses, numerical simulations, and experimental investigations. We find that compared to instant inversion or instant saturation, continuous saturation is the most practical strategy to accelerate coherence transfers on half-integer quadrupolar nuclei. We further demonstrate that this strategy is efficient to enhance the sensitivity of J-mediated heteronuclear correlation experiments between two half-integer quadrupolar isotopes (e.g., 27Al-17O). In this case, the build-up is strongly affected by relaxation for small T2′ and J coupling values, and shortening the mixing time makes a huge signal enhancement. Moreover, this concept of population transfer can also be applied to dipolar-mediated HMQC experiments. Indeed, on the AlPO4-14 sample, one still observes experimentally a 2-fold shortening of the optimum mixing time albeit with no significant signal gain in the 31P-(27Al) experiments

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Identifiers

Publishing Information

Journal Title
Journal of Chemical Physics
Journal Volume
142
Journal Issue
9
Journal Page Range
p. 094201-094201.10
ISSN
0021-9606
CODEN
JCPSA6

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