THEORETICAL DESIGN OF AMPLITUDE-MODULATED PULSES FOR SPIN DECOUPLING IN NUCLEAR-MAGNETIC-RESONANCE

Authors
Citation
H. Geen, THEORETICAL DESIGN OF AMPLITUDE-MODULATED PULSES FOR SPIN DECOUPLING IN NUCLEAR-MAGNETIC-RESONANCE, Journal of physics. B, Atomic molecular and optical physics, 29(9), 1996, pp. 1699-1710
Citations number
25
Categorie Soggetti
Physics, Atomic, Molecular & Chemical",Optics
ISSN journal
09534075
Volume
29
Issue
9
Year of publication
1996
Pages
1699 - 1710
Database
ISI
SICI code
0953-4075(1996)29:9<1699:TDOAPF>2.0.ZU;2-5
Abstract
The problem of low-power spin decoupling over a broad range of chemica l shifts in liquid-state nuclear magnetic resonance (NMR) is addressed through the design of periodic amplitude-modulated irradiation scheme s. A principal feature of these is the composition of each decoupling period which contains a single modulated pulse in place of a composite -pulse train of the kind used traditionally. To satisfy the theoretica l criterion for decoupling, the pulse amplitude is shaped such that th e propagator is made cyclic and broadband, meaning here that it equals the identity matrix over a frequency range which is broad compared to the root-mean-square (RMS) pulse amplitude. The method of design is b ased on the use of the Floquet formalism to provide insight into the i nfluence of the modulation on the dynamics of the irradiated spin-1/2 Modulation functions formed from simple Fourier series are derived in the first instance using perturbation theory to impose the required cy clicity on the propagator. Broader bandwidth solutions are then obtain ed by the addition of higher-order Fourier components. Finally, numeri cal refinement of a selected solution is shown to raise the decoupling quality to the standards acceptable in routine high-resolution NMR.