Parallel nuclear magnetic resonance spectroscopy

Nuclear magnetic resonance (NMR) spectroscopy is a principal analytical technique used for the structure elucidation of molecules. This Primer covers different approaches to accelerate data acquisition and increase sensitivity of NMR measurements through parallelization, enabled by hardware design a...

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Main Authors: Kupče, Ē, Frydman, L, Webb, AG, Yong, JRJ, Claridge, TDW
Format: Journal article
Language:English
Published: Springer Nature 2021
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author Kupče, Ē
Frydman, L
Webb, AG
Yong, JRJ
Claridge, TDW
author_facet Kupče, Ē
Frydman, L
Webb, AG
Yong, JRJ
Claridge, TDW
author_sort Kupče, Ē
collection OXFORD
description Nuclear magnetic resonance (NMR) spectroscopy is a principal analytical technique used for the structure elucidation of molecules. This Primer covers different approaches to accelerate data acquisition and increase sensitivity of NMR measurements through parallelization, enabled by hardware design and/or pulse sequence development. Starting with hardware-based methods, we discuss coupling multiple detectors to multiple samples so each detector/sample combination provides unique information. We then cover spatio-temporal encoding, which uses magnetic field gradients and frequency-selective manipulations to parallelize multidimensional acquisition and compress it into a single shot. We also consider the parallel manipulation of different magnetization reservoirs within a sample to yield new, information-rich pulse schemes using either homonuclear or multinuclear detection. The Experimentation section describes the set-up of parallel NMR techniques. Practical examples revealing improvements in speed and sensitivity offered by the parallel methods are demonstrated in Results. Examples of use of parallelization in small-molecule analysis are discussed in Applications, with experimental constraints addressed under the Limitations and optimizations and Reproducibility and data deposition sections. The most promising future developments are considered in the Outlook, where the largest gains are expected to emerge once the discussed techniques are combined.
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spelling oxford-uuid:b1ccbb41-25df-4c39-b91a-3753da881e982022-03-27T04:06:51ZParallel nuclear magnetic resonance spectroscopyJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:b1ccbb41-25df-4c39-b91a-3753da881e98EnglishSymplectic ElementsSpringer Nature2021Kupče, ĒFrydman, LWebb, AGYong, JRJClaridge, TDWNuclear magnetic resonance (NMR) spectroscopy is a principal analytical technique used for the structure elucidation of molecules. This Primer covers different approaches to accelerate data acquisition and increase sensitivity of NMR measurements through parallelization, enabled by hardware design and/or pulse sequence development. Starting with hardware-based methods, we discuss coupling multiple detectors to multiple samples so each detector/sample combination provides unique information. We then cover spatio-temporal encoding, which uses magnetic field gradients and frequency-selective manipulations to parallelize multidimensional acquisition and compress it into a single shot. We also consider the parallel manipulation of different magnetization reservoirs within a sample to yield new, information-rich pulse schemes using either homonuclear or multinuclear detection. The Experimentation section describes the set-up of parallel NMR techniques. Practical examples revealing improvements in speed and sensitivity offered by the parallel methods are demonstrated in Results. Examples of use of parallelization in small-molecule analysis are discussed in Applications, with experimental constraints addressed under the Limitations and optimizations and Reproducibility and data deposition sections. The most promising future developments are considered in the Outlook, where the largest gains are expected to emerge once the discussed techniques are combined.
spellingShingle Kupče, Ē
Frydman, L
Webb, AG
Yong, JRJ
Claridge, TDW
Parallel nuclear magnetic resonance spectroscopy
title Parallel nuclear magnetic resonance spectroscopy
title_full Parallel nuclear magnetic resonance spectroscopy
title_fullStr Parallel nuclear magnetic resonance spectroscopy
title_full_unstemmed Parallel nuclear magnetic resonance spectroscopy
title_short Parallel nuclear magnetic resonance spectroscopy
title_sort parallel nuclear magnetic resonance spectroscopy
work_keys_str_mv AT kupcee parallelnuclearmagneticresonancespectroscopy
AT frydmanl parallelnuclearmagneticresonancespectroscopy
AT webbag parallelnuclearmagneticresonancespectroscopy
AT yongjrj parallelnuclearmagneticresonancespectroscopy
AT claridgetdw parallelnuclearmagneticresonancespectroscopy