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Composite-180° Pulse-Based Symmetry Sequences to Recouple Proton Chemical Shift Anisotropy Tensors under Ultrafast MAS Solid-State NMR Spectroscopy

机译:基于复合180°脉冲的对称序列在超快速MAS固态NMR光谱下重新耦合质子化学位移各向异性张量

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摘要

There is considerable interest in the measurement of proton (1H) chemical shift anisotropy (CSA) tensors to obtain deeper insights into H-bonding interactions which find numerous applications in chemical and biological systems. However, the presence of strong 1H/1H dipolar interaction makes it difficult to determine small size 1H CSAs from the homogeneously broadened NMR spectra. Previously reported pulse sequences for 1H CSA recoupling are prone to the effects of radio frequency field (B1) inhomogeneity. In the present work we have carried out a systematic study using both numerical and experimental approaches to evaluate γ-encoded radio frequency (RF) pulse sequences based on R-symmetries that recouple 1H CSA in the indirect dimension of a 2D 1H/1H anisotropic/isotropic chemical shift correlation experiment under ultrafast magic angle spinning (MAS) frequencies. The spectral resolution and sensitivity can be significantly improved in both frequency dimensions of the 2D 1H/1H correlation spectrum without decoupling 1H/1H dipolar couplings but by using ultrafast MAS rates up to 70 kHz. We successfully demonstrate that with a reasonable RF field requirement (< 200 kHz) a set of symmetry-based recoupling sequences, with a series of phase-alternating 270°0-90°180 composite-180° pulses, are more robust in combating B1 inhomogeneity effects. In addition, our results show that the new pulse sequences render remarkable 1H CSA recoupling efficiency and undistorted CSA lineshapes. Experimental results on citric acid and malonic acid comparing the efficiencies of these newly developed pulse sequences with that of previously reported CSA recoupling pulse sequences are also reported under ultrafast MAS conditions.
机译:质子( 1 H)化学位移各向异性(CSA)张量的测量引起了人们的极大兴趣,以更深入地了解H键相互作用,该相互作用在化学和生物系统中得到了许多应用。但是,强 1 H / 1 H偶极相互作用的存在使得很难从均一的NMR谱图确定小尺寸的 1 H CSA 。先前报道的 1 H CSA重新耦合的脉冲序列容易受到射频场(B1)不均匀性的影响。在目前的工作中,我们已经使用数值和实验方法进行了系统的研究,以基于R对称性评估γ编码的射频(RF)脉冲序列,该对称性在间接维度上重新耦合了 1 H CSA超快魔角旋转(MAS)频率下二维 1 H / 1 H各向异性/各向同性化学位移相关实验二维 1 H / 1 H相关频谱的两个频率维度上的光谱分辨率和灵敏度都可以得到显着提高,而无需去耦 1 H / < sup> 1 H双极耦合,但要使用高达70 kHz的超快MAS速率。我们成功地证明,在合理的RF场要求(<200 kHz)的情况下,一组基于对称的重耦合序列以及一系列相交的270°0-90°180复合180°脉冲在对抗B1方面更强大不均匀效应。此外,我们的结果表明,新的脉冲序列具有显着的 1 H CSA重耦合效率和不失真的CSA线形。在超快MAS条件下,还报道了柠檬酸和丙二酸的实验结果,将这些新开发的脉冲序列与先前报道的CSA再耦合脉冲序列的效率进行了比较。

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