Akoka Serge, Giraudeau Patrick
EBSI Team, Chimie et Interdisciplinarité: Synthèse, Analyse, Modélisation (CEISAM), CNRS, UMR 6230, Université de Nantes, LUNAM Université
Institut Universitaire de France, 1 rue Descartes, 75005, Paris Cedex 5, France.
Magn Reson Chem. 2015 Nov;53(11):986-94. doi: 10.1002/mrc.4237. Epub 2015 Mar 31.
Conventional multi-dimensional (nD) NMR experiments are characterized by inherent long acquisition durations, while ultrafast (UF) NMR makes it possible to reduce to a few hundreds of milliseconds the overall acquisition duration of a complete nD NMR dataset. Although extremely promising for a number of specific applications, the UF strategy suffers from significant limitations compared with its conventional counterpart. The main limitations concern the sensitivity, the resolution, and the accessible spectral width. However, when the targeted applications are compatible with an acquisition duration between a few seconds and a few minutes, hybrid UF techniques can be used to improve the performance of UF nD NMR while remaining faster than conventional acquisitions. Much better results in terms of signal-to-noise ratio can be achieved with the multi-scan single-shot approach or with interleaved acquisitions. Even more, for the same experimental duration, and in the case of homonuclear 2D NMR, the multi-scan single-shot approach has a much higher precision than conventional 2D NMR. Interleaved 2D NMR overcomes the drawbacks of single-scan UF NMR in terms of spectral width and provides spectra for which the quality is not significantly different from that obtained with conventional 2D NMR. Finally, high spectral qualities have been demonstrated from hybrid conventional/UF 3D approaches capable of recording a whole 3D spectrum in the time needed to record a conventional 2D spectrum. This mini-review aims at describing the principles, the recent advances and the latest applications of these hybrid techniques. Copyright © 2015 John Wiley & Sons, Ltd.
传统的多维(nD)核磁共振实验的特点是采集时间长,而超快(UF)核磁共振能够将完整nD核磁共振数据集的整体采集时间缩短至几百毫秒。尽管UF策略在许多特定应用中极具前景,但与传统方法相比仍存在显著局限性。主要局限在于灵敏度、分辨率和可获取的光谱宽度。然而,当目标应用的采集时间在几秒到几分钟之间时,可以使用混合UF技术来提高UF nD核磁共振的性能,同时仍比传统采集更快。采用多次扫描单次激发方法或交错采集可以获得更好的信噪比结果。甚至,在相同的实验时长下,对于同核二维核磁共振,多次扫描单次激发方法比传统二维核磁共振具有更高的精度。交错二维核磁共振克服了单次扫描UF核磁共振在光谱宽度方面的缺点,并提供了质量与传统二维核磁共振获得的光谱没有显著差异的光谱。最后,传统/UF混合三维方法能够在记录传统二维光谱所需的时间内记录完整的三维光谱,已证明其具有高光谱质量。本综述旨在描述这些混合技术的原理、最新进展和最新应用。版权所有© 2015约翰威立父子有限公司。