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Quantification of pore size distribution using diffusion NMR: Experimental design and physical insights

机译:使用扩散NMR定量分析孔径分布:实验设计和物理见解

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Pulsed field gradient (PFG) diffusion NMR experiments are sensitive to restricted diffusion within porous media and can thus reveal essential microstructural information about the confining geometry. Optimal design methods of inverse problems are designed to select preferred experimental settings to improve parameter estimation quality. However, in pore size distribution (PSD) estimation using NMR methods as in other ill-posed problems, optimal design strategies and criteria are scarce. We formulate here a new optimization framework for ill-posed problems. This framework is suitable for optimizing PFG experiments for probing geometries that are solvable by the Multiple Correlation Function approach. The framework is based on a heuristic methodology designed to select experimental sets which balance between lowering the inherent ill-posedness and increasing the NMR signal intensity. This method also selects favorable discrete pore sizes used for PSD estimation. Numerical simulations performed demonstrate that using this framework greatly improves the sensitivity of PFG experimental sets to the pores’ sizes. The optimization also sheds light on significant features of the preferred experimental sets. Increasing the gradient strength and varying multiple experimental parameters is found to be preferable for reducing the ill-posedness. We further evaluate the amount of pore size information that can be obtained by wisely selecting the duration of the diffusion and mixing times. Finally, we discuss the ramification of using single PFG or double PFG sequences for PSD estimation. In conclusion, the above optimization method can serve as a useful tool for experimenters interested in quantifying PSDs of different specimens. Moreover, the applicability of the suggested optimization framework extends far beyond the field of PSD estimation in diffusion NMR, and reaches design of sampling schemes of other ill-posed problems.
机译:脉冲场梯度(PFG)扩散NMR实验对多孔介质内的受限扩散很敏感,因此可以揭示有关约束几何学的基本微观结构信息。反问题的最佳设计方法旨在选择首选实验设置,以提高参数估计质量。但是,与其他不适定问题一样,使用NMR方法估算孔径分布(PSD)时,缺乏最佳的设计策略和标准。我们在这里为不适定问题制定了一个新的优化框架。该框架适用于优化PFG实验,以探测可通过多重相关函数方法求解的几何形状。该框架基于启发式方法,旨在选择实验集,在降低固有不适和增加NMR信号强度之间取得平衡。该方法还选择用于PSD估计的有利离散孔径。进行的数值模拟表明,使用该框架大大提高了PFG实验装置对孔尺寸的敏感性。优化还揭示了首选实验装置的重要功能。发现增加梯度强度和改变多个实验参数对于降低不适定性是优选的。我们进一步评估可以通过明智地选择扩散的持续时间和混合时间而获得的孔径信息的数量。最后,我们讨论了使用单个PFG或双PFG序列进行PSD估计的后果。总之,上述优化方法可以作为对量化不同样本PSD感兴趣的实验者的有用工具。此外,所提出的优化框架的适用性已远远超出了扩散核磁共振中PSD估计的范围,并达到了其他不适定问题的采样方案的设计。

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