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Full-Scale Ab Initio Simulation of Magic-Angle-Spinning Dynamic Nuclear Polarization

机译:全尺寸AB初探魔法角度纺纱动态核极化模拟

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摘要

Theoretical models aimed at describing magic-angle-spinning (MAS) dynamic nuclear polarization (DNP) NMR have great potential in facilitating the in silico design of DNP polarizing agents and formulations. These models must typically face a trade-off between the accuracy of a strict quantum mechanical description and the need for using realistically large spin systems, for instance, using phenomenological models. Here, we show that the use of aggressive state-space restrictions and an optimization strategy allows full-scale ab initio MAS-DNP simulations of spin systems containing thousands of nuclei. Our simulations are shown to reproduce experimental DNP enhancements quantitatively, including their MAS rate dependence, for both frozen solutions and solid materials. They also reveal the importance of a previously unrecognized structural feature found in some polarizing agents that helps minimize the sensitivity losses imposed by the spin diffusion barrier.
机译:旨在描述魔法角旋转(MAS)动态核极化(DNP)NMR的理论模型具有促进DNP偏振剂和制剂的硅设计的巨大潜力。 这些型号通常必须在严格量子力学描述的准确性之间面临权衡,例如使用现实的大型自旋系统,例如使用现象学模型。 在这里,我们表明,使用攻击状态空间限制和优化策略允许含有数千核的旋转系统的全尺度AB Initio Mas-DNP模拟。 对于冷冻溶液和固体材料,我们的模拟被定量地定量再现实验DNP增强功能,包括它们的MAS率依赖性。 他们还揭示了在一些偏振剂中发现的先前未识别的结构特征的重要性,其有助于最小化自旋扩散屏障施加的灵敏度损失。

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