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Pushing NMR sensitivity limits using dynamic nuclear polarization with closed-loop cryogenic helium sample spinning

机译:使用动态核极化和闭环低温氦气样品旋转提高NMR灵敏度极限

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摘要

We report a strategy to push the limits of solid-state NMR sensitivity far beyond its current state-of-the-art. The approach relies on the use of dynamic nuclear polarization and demonstrates unprecedented DNP enhancement factors for experiments performed at sample temperatures much lower than 100 K, and can translate into 6 orders of magnitude of experimental time-savings. This leap-forward was made possible thanks to the employment of cryogenic helium as the gas to power magic angle sample spinning (MAS) for dynamic nuclear polarization (DNP) enhanced NMR experiments. These experimental conditions far exceed what is currently possible and allows currently reaching sample temperatures down to 30 K while conducting experiments with improved resolution (thanks to faster spinning frequencies, up to 25 kHz) and highly polarized nuclear spins. The impressive associated gains were used to hyperpolarize the surface of an industrial catalyst as well as to hyperpolarize organic nano-assemblies (self-assembling peptides in our case), for whom structures cannot be solved using diffraction techniques. Sustainable cryogenic helium sample spinning significantly enlarges the realm and possibilities of the MAS-DNP technique and is the route to transform NMR into a versatile but also sensitive atomic-level characterization tool.
机译:我们报告了一种将固态NMR灵敏度的极限远远超出其当前技术水平的策略。该方法依赖于动态核极化的使用,并证明了在远低于100 K的样品温度下进行实验的DNP增强因子,并且可以节省6个数量级的实验时间。由于采用了低温氦气作为动力魔角样品旋转(MAS)进行动态核极化(DNP)增强NMR实验的气体,因此实现了这一飞跃。这些实验条件远远超出了当前可能的条件,并允许当前达到30 K的样品温度,同时以更高的分辨率(由于更快的旋转频率,高达25 kHz)和高度极化的核自旋进行实验。令人印象深刻的相关收益用于使工业催化剂的表面超极化以及使有机纳米组件(在我们的情况下为自组装肽)超极化,而这些结构无法使用衍射技术解决。可持续的低温氦样品旋转极大地扩大了MAS-DNP技术的领域和可能性,并且是将NMR转变为通用但又灵敏的原子级表征工具的途径。

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