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Selective excitation enables assignment of proton resonances and 1H-1H distance measurement in ultrafast magic angle spinning solid state NMR spectroscopy

机译:选择性激发可实现超快魔角旋转固态NMR光谱中的质子共振和1H-1H距离测量

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摘要

Remarkable developments in ultrafast magic angle spinning (MAS) solid-state NMR spectroscopy enabled proton-based high-resolution multidimensional experiments on solids. To fully utilize the benefits rendered by proton-based ultrafast MAS experiments, assignment of 1H resonances becomes absolutely necessary. Herein, we propose an approach to identify different proton peaks by using dipolar-coupled heteronuclei such as 13C or 15N. In this method, after the initial preparation of proton magnetization and cross-polarization to 13C nuclei, transverse magnetization of desired 13C nuclei is selectively prepared by using DANTE (Delays Alternating with Nutations for Tailored Excitation) sequence and then, it is transferred to bonded protons with a short-contact-time cross polarization. Our experimental results demonstrate that protons bonded to specific 13C atoms can be identified and overlapping proton peaks can also be assigned. In contrast to the regular 2D HETCOR experiment, only a few 1D experiments are required for the complete assignment of peaks in the proton spectrum. Furthermore, the finite-pulse radio frequency driven recoupling sequence could be incorporated right after the selection of specific proton signals to monitor the intensity buildup for other proton signals. This enables the extraction of 1H-1H distances between different pairs of protons. Therefore, we believe that the proposed method will greatly aid in fast assignment of peaks in proton spectra and will be useful in the development of proton-based multi-dimensional solid-state NMR experiments to study atomic-level resolution structure and dynamics of solids.
机译:超快魔术角旋转(MAS)固态NMR光谱学的显着发展实现了对固体进行基于质子的高分辨率多维实验。为了充分利用基于质子的超快MAS实验带来的好处,必须分配 1 H共振。本文中,我们提出了一种通过使用偶极耦合的异核(如 13 C或 15 N)来识别不同质子峰的方法。在这种方法中,在初步制备质子磁化和交叉极化至 13 C核后,通过使用DANTE(Delays Alternating)选择性地制备所需的 13 C核的横向磁化。然后,将其转移到具有短接触时间交叉极化的键合质子上。我们的实验结果表明,可以识别与特定 13 C原子键合的质子,也可以指定重叠的质子峰。与常规2D HETCOR实验相比,质子谱中峰的完全分配仅需要进行少量1D实验。此外,可以在选择特定质子信号之后立即并入有限脉冲射频驱动的重新耦合序列,以监视其他质子信号的强度累积。这样可以提取不同对质子之间的 1 H- 1 H距离。因此,我们相信所提出的方法将大大有助于快速分配质子谱中的峰,并将对开发基于质子的多维固态NMR实验以研究原子级拆分结构和固体动力学方面很有用。

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