Artículo
Optimized phases for the acquisition of J-spectra in coupled spin systems for thermally and PHIP polarized molecules
Bussandri Mattia, Santiago
; Prina, Ignacio
; Acosta, Rodolfo Héctor
; Buljubasich Gentiletti, Lisandro
Fecha de publicación:
04/2018
Editorial:
Academic Press Inc Elsevier Science
Revista:
Journal Of Magnetic Resonance
ISSN:
1090-7807
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
We demonstrate that the relative phases in the refocusing pulses of multipulse sequences can compensate for pulse errors and off-resonant effects, which are commonly encountered in J-spectroscopy when CPMG is used for acquisition. The use of supercycles has been considered many times in the past, but always from the view point of time-domain NMR, that is, in an effort to lengthen the decay of the magnetization. Here we use simple spin-coupled systems, in which the quantum evolution of the system can be simulated and contrasted to experimental results. In order to explore fine details, we resort to partial J-spectroscopy, that is, to the acquisition of J-spectra of a defined multiplet, which is acquired with a suitable digital filter. We unambiguously show that when finite radiofrequency pulses are considered, the off-resonance effects on nearby multiplets affects the dynamics of the spins within the spectral window under acquisition. Moreover, the most robust phase cycling scheme for our setup consists of a 4-pulse cycle, with phases yyyy‾ or xxxx‾ for an excitation pulse with phase x. We show simulated and experimental results in both thermally polarized and PHIP hyperpolarized systems.
Archivos asociados
Licencia
Identificadores
Colecciones
Articulos(IFEG)
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Citación
Bussandri Mattia, Santiago; Prina, Ignacio; Acosta, Rodolfo Héctor; Buljubasich Gentiletti, Lisandro; Optimized phases for the acquisition of J-spectra in coupled spin systems for thermally and PHIP polarized molecules; Academic Press Inc Elsevier Science; Journal Of Magnetic Resonance; 289; 4-2018; 55-62
Compartir
Altmétricas