A Fast and Convenient Way to Predict Relaxation During a Frequency-Selective Adiabatic Hyperbolic Secant Pulse (HS1 Sech Pulse)


Citar

Texto integral

Acesso aberto Acesso aberto
Acesso é fechado Acesso está concedido
Acesso é fechado Somente assinantes

Resumo

Frequency-selective inversion of magnetization is often achieved by long, low-power adiabatic RF pulses. Because these pulses can last hundreds of milliseconds, substantial relaxation of magnetization can occur during their application. Recently, a numerical model was introduced that allows an approximation of relaxation during frequency-selective adiabatic pulses for fast-tumbling small molecules in non-viscous solutions using only standard T1 and T2 relaxation times. This model is now extended to conditions in which net magnetization is not at its thermodynamic equilibrium prior to the adiabatic inversion. Simulated and experimental data reveal that the amplitude of net magnetization after an adiabatic inversion with the HS1 hyperbolic secant pulse can be approximated by a linear function of the magnetization before the pulse, depending only on T1 and T2 relaxation. The model presented here is particularly applicable to solvent-suppression sequences that utilize multiple adiabatic inversions, such as the multiple inversion-recovery nulling sequence EXCEPT. Tabulated slope and intercept values for the linear relationship are provided to facilitate a convenient optimization of pulse sequences that utilize HS1 frequency-selective adiabatic inversions.

Sobre autores

Annalise Pfaff

Department of Chemistry, Missouri University of Science and Technology

Autor responsável pela correspondência
Email: arpvdc@mst.edu
ORCID ID: 0000-0003-0013-8213
Estados Unidos da América, 400 West 11th Street, Rolla, MO, 65409-0010

Klaus Woelk

Department of Chemistry, Missouri University of Science and Technology

Email: arpvdc@mst.edu
ORCID ID: 0000-0002-1386-5623
Estados Unidos da América, 400 West 11th Street, Rolla, MO, 65409-0010

Arquivos suplementares

Arquivos suplementares
Ação
1. JATS XML

Declaração de direitos autorais © Springer-Verlag GmbH Austria, part of Springer Nature, 2018