A new perspective of molecular diffusion by nuclear magnetic resonance

被引:0
作者
Giulio Costantini
Silvia Capuani
Francis Allen Farrelly
Alessandro Taloni
机构
[1] Consiglio Nazionale delle Ricerche,Istituto Sistemi Complessi
[2] UOS Sapienza,Istituto Sistemi Complessi
[3] Consiglio Nazionale delle Ricerche,undefined
来源
Scientific Reports | / 13卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The diffusion-weighted NMR signal acquired using Pulse Field Gradient (PFG) techniques, allows for extrapolating microstructural information from porous materials and biological tissues. In recent years there has been a multiplication of diffusion models expressed by parametric functions to fit the experimental data. However, clear-cut criteria for the model selection are lacking. In this paper, we develop a theoretical framework for the interpretation of NMR attenuation signals in the case of Gaussian systems with stationary increments. The full expression of the Stejskal–Tanner formula for normal diffusing systems is devised, together with its extension to the domain of anomalous diffusion. The range of applicability of the relevant parametric functions to fit the PFG data can be fully determined by means of appropriate checks to ascertain the correctness of the fit. Furthermore, the exact expression for diffusion weighted NMR signals pertaining to Brownian yet non-Gaussian processes is also derived, accompanied by the proper check to establish its contextual relevance. The analysis provided is particularly useful in the context of medical MRI and clinical practise where the hardware limitations do not allow the use of narrow pulse gradients.
引用
收藏
相关论文
共 198 条
[1]  
Stejskal EO(1965)Spin diffusion measurements: Spin echoes in the presence of a time-dependent field gradient J. Chem. Phys. 42 288-292
[2]  
Tanner JE(2000)Diffusion-weighted mr imaging of the brain Radiology 217 331-345
[3]  
Schaefer PW(1985)Imagerie de diffusion in vivo par résonance magnétique nucléaire Comptes rendus de l’Académie des sciences. Série 2, Mécanique, Physique, Chimie, Sciences de l’univers, Sciences de la Terre 301 1109-1112
[4]  
Grant PE(1994)Estimation of the effective self-diffusion tensor from the NMR spin echo J. Magn. Reson. Ser. B 103 247-254
[5]  
Gonzalez RG(1956)Bloch equations with diffusion terms Phys. Rev. 104 563-135
[6]  
Le Bihan D(2011)Pore diameter mapping using double pulsed-field gradient MRI and its validation using a novel glass capillary array phantom J. Magn. Reson. 208 128-77
[7]  
Breton E(2019)Magnetic resonance diffusion measurements of droplet size in drilling fluid emulsions on a benchtop instrument Colloids Surf. A 564 69-120
[8]  
Basser PJ(2021)Ultrafast methods for relaxation and diffusion Prog. Nucl. Magn. Reson. Spectrosc. 126 101-31
[9]  
Mattiello J(2001)Difftrain: A novel approach to a true spectroscopic single-scan diffusion measurement J. Magn. Reson. 151 28-350
[10]  
LeBihan D(1993)Time-dependent self-diffusion by NMR spin-echo Phys. B 183 343-117