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A Novel High-Resolution and Sensitivity-Enhanced Three-Dimensional Solid-State NMR Experiment Under Ultrafast Magic Angle Spinning Conditions

机译:超快魔角旋转条件下的新型高分辨率和增强灵敏度的三维固态NMR实验

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摘要

Although magic angle spinning (MAS) solid-state NMR is a powerful technique to obtain atomic-resolution insights into the structure and dynamics of a variety of chemical and biological solids, poor sensitivity has severely limited its applications. In this study, we demonstrate an approach that suitably combines proton-detection, ultrafast-MAS and multiple frequency dimensions to overcome this limitation. With the utilization of proton-proton dipolar recoupling and double quantum (DQ) coherence excitation/reconversion radio-frequency pulses, very high-resolution proton-based 3D NMR spectra that correlate single-quantum (SQ), DQ and SQ coherences of biological solids have been obtained successfully for the first time. The proposed technique requires a very small amount of sample and does not need multiple radio-frequency (RF) channels. It also reveals information about the proximity between a spin and a certain other dipolar-coupled pair of spins in addition to regular SQ/DQ and SQ/SQ correlations. Although 1H spectral resolution is still limited for densely proton-coupled systems, the 3D technique is valuable to study dilute proton systems, such as zeolites, small molecules, or deuterated samples. We also believe that this new methodology will aid in the design of a plethora of multidimensional NMR techniques and enable high-throughput investigation of an exciting class of solids at atomic-level resolution.
机译:尽管魔角旋转(MAS)固态NMR是获得原子分辨率的洞察力,可了解各种化学和生物固体的结构和动力学的强大技术,但灵敏度低却严重限制了其应用。在这项研究中,我们演示了一种将质子检测,超快MAS和多个频率维度相结合的方法,以克服这一局限性。利用质子-质子偶极耦合和双量子(DQ)相干激发/转换射频脉冲,基于高分辨率的基于质子的3D NMR光谱将生物固体的单量子(SQ),DQ和SQ相干相关首次成功获得。所提出的技术需要非常少量的样本,并且不需要多个射频(RF)通道。除了常规的SQ / DQ和SQ / SQ相关性之外,它还揭示了有关自旋和某些其他偶极耦合自旋对之间的接近性的信息。尽管 1 H光谱分辨率对于稠密的质子耦合系统仍然受限制,但是3D技术对于研究稀质子系统(例如沸石,小分子或氘代样品)非常有价值。我们还相信,这种新方法将有助于设计多种多维NMR技术,并能够以原子级的分辨率对令人兴奋的固体类别进行高通量研究。

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