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Monitoring polydispersity by NMR diffusometry with tailored norm regularisation and moving-frame processing

机译:通过NMR扩散法和量身定制的规范化正则化和移动帧处理来监控多分散性

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摘要

Nuclear magnetic resonance (NMR) is currently one of the main analytical techniques applied in numerous branches of chemistry. Furthermore, NMR has been proven to be useful to follow in situ reactions occurring on a time scale of hours and days. For complicated mixtures, NMR experiments providing diffusion coefficients are particularly advantageous. However, the inverse Laplace transform (ILT) that is used to extract the distribution of diffusion coefficients from an NMR signal is known to be unstable and vulnerable to noise. Numerous regularisation techniques to circumvent this problem have been proposed. In our recent study, we proposed a method based on sparsity-enforcing l(1)-norm minimisation. This approach, which is referred to as ITAMeD, has been successful but limited to samples with a 'discrete' distribution of diffusion coefficients. In this paper, we propose a generalisation of ITAMeD using a tailored l(p)-norm (1 <= p <= 2) to process, in particular, signals arising from 'polydisperse' samples. The performance of our method was tested on simulations and experimental datasets of polyethylene oxides with varying polydispersity indices. Finally, we applied our new method to monitor diffusion coefficient and polydispersity changes of heparin undergoing enzymatic degradation in real time.
机译:核磁共振(NMR)是目前在众多化学领域中应用的主要分析技术之一。此外,已证明NMR对于跟踪在数小时和数天的时间尺度上发生的原位反应是有用的。对于复杂的混合物,提供扩散系数的NMR实验特别有利。但是,已知用于从NMR信号中提取扩散系数分布的拉普拉斯逆变换(ILT)不稳定且易受噪声影响。已经提出了许多规避该问题的正则化技术。在我们最近的研究中,我们提出了一种基于稀疏性增强l(1)-范数最小化的方法。这种称为ITAMeD的方法已经成功,但仅限于扩散系数“离散”分布的样品。在本文中,我们提出了使用定制的l(p)-范数(1 <= p <= 2)来处理ITAMeD的一般方法,特别是处理“多分散”样本产生的信号。我们的方法的性能在具有不同多分散指数的聚环氧乙烷的模拟和实验数据集上进行了测试。最后,我们应用我们的新方法来实时监测经历酶促降解的肝素的扩散系数和多分散性变化。

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