4.3 Article

Double-quantum homonuclear correlations of spin I=5/2 nuclei

Journal

JOURNAL OF MAGNETIC RESONANCE
Volume 208, Issue 2, Pages 225-234

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jmr.2010.11.007

Keywords

Half-integer quadrupolar nuclei; Homonuclear correlations; Gamma alumina

Funding

  1. EPSRC
  2. BBSRC
  3. University of Warwick
  4. Birmingham Science City Advanced Materials Project
  5. European Regional Development Fund (ERDF)
  6. Engineering and Physical Sciences Research Council [EP/F017901/1] Funding Source: researchfish
  7. EPSRC [EP/F017901/1] Funding Source: UKRI

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The challenges associated with acquiring double-quantum homonuclear Nuclear Magnetic Resonance correlation spectra of half-integer quadrupolar nuclei are described. In these experiments the radio-frequency irradiation amplitude is necessarily weak in order to selectively excite the central transition. In this limit only one out of the 25 double-quantum coherences possible for two coupled spin I = 5/2 nuclei is excited. An investigation of all the 25 two spins double quantum transitions reveals interesting effects such as a compensation of the first-order quadrupolar interaction between the two single quantum transitions involved in the double quantum coherence. In this paper a full numerical study of a hypothetical two spin I = 5/2 system is used to show what happens when the RF amplitude during recoupling is increased. In principle this is advantageous, since the required double quantum coherence should build up faster, but in practice it also induces adiabatic passage transfer of population and coherence which impedes any build up. Finally an optimized rotary resonance recoupling (oR(3)) sequence is introduced in order to decrease these transfers. This sequence consists of a spin locking irradiation whose amplitude is reduced four times during one rotor period, and allows higher RF powers to be used during recoupling. The sequence is used to measure Al-27 DQ dipolar correlation spectra of Y3Al5O12 (YAG) and gamma alumina (gamma Al2O3). The results prove that aluminium vacancies in gamma alumina mainly occur in the tetrahedral sites. (C) 2010 Elsevier Inc. All rights reserved.

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