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Fast time-resolved NMR with non-uniform sampling

机译:快速时间分辨的NMR,具有非均匀采样

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摘要

NMR spectroscopy is a versatile tool for studying time-dependent processes: chemical reactions, phase transitions or macromolecular structure changes. However, time-resolved NMR is usually based on the simplest among available techniques - one-dimensional spectra serving as "snapshots" of the studied process. One of the reasons is that multidimensional experiments are very time-expensive due to costly sampling of evolution time space. In this review we summarize efforts to alleviate the problem of limited applicability of multidimensional NMR in time-resolved studies. We focus on techniques based on sparse or non-uniform sampling (NUS), which lead to experimental time reduction by omitting a significant part of the data during measurement and reconstructing it mathematically, adopting certain assumptions about the spectrum. NUS spectra are faster to acquire than conventional ones and thus better suited to the role of "snapshots", but still suffer from non-stationarity of the signal i.e. amplitude and frequency variations within a dataset. We discuss in detail how these instabilities affect the spectra, and what are the optimal ways of sampling the non-stationary FID signal. Finally, we discuss related areas of NMR where serial experiments are exploited and how they can benefit from the same NUS-based approaches.
机译:NMR光谱是用于研究时间依赖性过程的多功能工具:化学反应,相转变或大分子结构的变化。然而,时间分辨的NMR通常基于最简单的可用技术 - 用作所研究过程的“快照”的一维光谱。其中一个原因是,由于演化时间空间的昂贵采样,多维实验非常昂贵。在这篇综述中,我们总结了缓解多维核武器的适用性问题的努力,以时间解决的研究。我们专注于基于稀疏或非均匀采样(NUS)的技术,这通过省略了在测量期间的重要组成部分和数学重建,采用关于频谱的某些假设来实现实验时间。 NUS光谱比传统的频率更快,从而更适合于“快照”的作用,但仍然遭受信号的非公平性I.。数据集内的幅度和频率变化。我们详细讨论了这些不稳定性如何影响光谱,以及采样非静止FID信号的最佳方式是什么。最后,我们讨论了NMR的相关领域,其中利用序列实验以及如何从相同的基于NUS的方法中受益。

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