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从头预测魔角旋转动态核极化的交叉效应效率。

De novo prediction of cross-effect efficiency for magic angle spinning dynamic nuclear polarization.

机构信息

Univ. Grenoble Alpes, CEA, CNRS, INAC-MEM, F-38000 Grenoble, France.

出版信息

Phys Chem Chem Phys. 2019 Jan 23;21(4):2166-2176. doi: 10.1039/c8cp06819d.

Abstract

Magic angle spinning dynamic nuclear polarization (MAS-DNP) has become a key approach to boost the intrinsic low sensitivity of NMR in solids. This method relies on the use of both stable radicals as polarizing agents (PAs) and suitable high frequency microwave irradiation to hyperpolarize nuclei of interest. Relating PA chemical structure to DNP efficiency has been, and is still, a long-standing problem. The complexity of the polarization transfer mechanism has so far limited the impact of analytical derivation. However, recent numerical approaches have profoundly improved the basic understanding of the phenomenon and have now evolved to a point where they can be used to help design new PAs. In this work, the potential of advanced MAS-DNP simulations combined with DFT calculations and high-field EPR to qualitatively and quantitatively predict hyperpolarization efficiency of particular PAs is analyzed. This approach is demonstrated on AMUPol and TEKPol, two widely-used bis-nitroxide PAs. The results notably highlight how the PA structure and EPR characteristics affect the detailed shape of the DNP field profile. We also show that refined simulations of this profile using the orientation dependency of the electron spin-lattice relaxation times can be used to estimate the microwave B1 field experienced by the sample. Finally, we show how modelling the nuclear spin-lattice relaxation times of close and bulk nuclei while accounting for PA concentration allows for a prediction of DNP enhancement factors and hyperpolarization build-up times.

摘要

魔角旋转动态核极化(MAS-DNP)已成为提高固体核磁共振固有低灵敏度的关键方法。该方法依赖于同时使用稳定自由基作为极化剂(PAs)和合适的高频微波辐照来超极化感兴趣的核。将 PA 的化学结构与 DNP 效率相关联一直是一个长期存在的问题。极化转移机制的复杂性迄今为止限制了分析推导的影响。然而,最近的数值方法极大地提高了对该现象的基本理解,并且现在已经发展到可以用于帮助设计新的 PA 的程度。在这项工作中,分析了先进的 MAS-DNP 模拟与 DFT 计算和高场 EPR 相结合,定性和定量预测特定 PA 超极化效率的潜力。该方法在 AMUPol 和 TEKPol 两种广泛使用的双硝氧化物 PA 上进行了演示。结果特别强调了 PA 结构和 EPR 特征如何影响 DNP 场分布的详细形状。我们还表明,使用电子自旋-晶格弛豫时间的取向依赖性对该分布进行精细模拟可用于估计样品经历的微波 B1 场。最后,我们展示了如何在考虑 PA 浓度的情况下对近核和体核的核自旋-晶格弛豫时间进行建模,从而可以预测 DNP 增强因子和超极化建立时间。

相似文献

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Theoretical aspects of Magic Angle Spinning - Dynamic Nuclear Polarization.魔角旋转-动态核极化的理论方面。
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High frequency dynamic nuclear polarization.高频动态核极化。
Acc Chem Res. 2013 Sep 17;46(9):1933-41. doi: 10.1021/ar300348n. Epub 2013 Apr 18.

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