Spinor double-quantum excitation in the solution NMR of near-equivalent spin-1/2 pairs
Abstract
A family of double-quantum excitation schemes is described for the solution nuclear magnetic resonance (NMR) of near-equivalent spin-1/2 pairs. These new methods exploit the spinor behavior of two-level systems, whose signature is the change of sign of a quantum state upon a 2π rotation. The spinor behavior is used to manipulate the phases of single-quantum coherences to prepare a double-quantum precursor state, which is rapidly converted into double-quantum coherence by a straightforward π/2 rotation. One set of spinor-based methods exploits symmetry-based pulse sequences, while the other set exploits SLIC (spin-lock-induced crossing), in which the nutation frequency under a resonant radiofrequency field is matched to the spin-spin coupling. A variant of SLIC is introduced that is well-compensated for deviations in the radiofrequency field amplitude. The methods are demonstrated by performing double-quantum-filtered F19 NMR on a molecular system containing a pair of diastereotopic F19 nuclei. The new methods are compared with existing techniques.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (8)
Urvashi D. Heramun
School of Chemistry, University of Southampton , Southampton SO17 1BJ,
Mohamed Sabba
School of Chemistry, University of Southampton , Southampton SO17 1BJ,
Dolnapa Yamano
School of Chemistry, University of Southampton , Southampton SO17 1BJ,
Christian Bengs
Bonifac Legrady
School of Chemistry, University of Southampton , Southampton SO17 1BJ,
Giuseppe Pileio
School of Chemistry, University of Southampton , Southampton SO17 1BJ,
Sam Thompson
School of Chemistry, University of Southampton , Southampton SO17 1BJ,
Malcolm H. Levitt
School of Chemistry, University of Southampton , Southampton SO17 1BJ,