Residual dipolar line width in magic-angle spinning proton solid-state NMR.

Q3 Physics and Astronomy
Magnetic resonance (Gottingen, Germany) Pub Date : 2021-07-01 eCollection Date: 2021-01-01 DOI:10.5194/mr-2-499-2021
Matías Chávez, Thomas Wiegand, Alexander A Malär, Beat H Meier, Matthias Ernst
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引用次数: 0

Abstract

Magic-angle spinning is routinely used to average anisotropic interactions in solid-state nuclear magnetic resonance (NMR). Due to the fact that the homonuclear dipolar Hamiltonian of a strongly coupled spin system does not commute with itself at different time points during the rotation, second-order and higher-order terms lead to a residual dipolar line broadening in the observed resonances. Additional truncation of the residual broadening due to isotropic chemical-shift differences can be observed. We analyze the residual line broadening in coupled proton spin systems based on theoretical calculations of effective Hamiltonians up to third order using Floquet theory and compare these results to numerically obtained effective Hamiltonians in small spin systems. We show that at spinning frequencies beyond 75 kHz, second-order terms dominate the residual line width, leading to a 1/ωr dependence of the second moment which we use to characterize the line width. However, chemical-shift truncation leads to a partial ωr-2 dependence of the line width which looks as if third-order effective Hamiltonian terms are contributing significantly. At slower spinning frequencies, cross terms between the chemical shift and the dipolar coupling can contribute in third-order effective Hamiltonians. We show that second-order contributions not only broaden the line, but also lead to a shift of the center of gravity of the line. Experimental data reveal such spinning-frequency-dependent line shifts in proton spectra in model substances that can be explained by line shifts induced by the second-order dipolar Hamiltonian.

魔角自旋质子固体核磁共振的剩余偶极线宽度
摘要魔角自旋通常用于对固态核磁共振(NMR)中的各向异性相互作用进行平均。由于强耦合自旋系统的同核偶极哈密顿量在旋转过程中的不同时间点不与其自身交换,二阶和高阶项导致观测到的共振中的剩余偶极线加宽。由于各向同性化学位移差异,可以观察到残余增宽的额外截断。基于Floquet理论对三阶有效哈密顿量的理论计算,我们分析了耦合质子-自旋系统中的残余线加宽,并将这些结果与小自旋系统中数值获得的有效哈密顿量进行了比较。我们发现在旋转频率超过75 kHz,二阶项主导剩余线宽,导致我们用来表征线宽的二阶矩的1/ωr依赖性。然而,化学位移截断导致线宽的部分ωr-2依赖性,这看起来似乎三阶有效哈密顿项有显著贡献。在较慢的自旋频率下,化学位移和偶极耦合之间的交叉项可以产生三阶有效哈密顿量。我们证明了二阶贡献不仅加宽了线,而且导致了线的重心偏移。实验数据揭示了模型物质中质子光谱中这种自旋频率相关的线位移,这可以用二阶偶极哈密顿量引起的线位移来解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.50
自引率
0.00%
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审稿时长
14 weeks
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