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Prospects for sub-micron solid state nuclear magnetic resonance imaging with low-temperature dynamic nuclear polarization

机译:低温动态核极化的亚微米固态核磁共振成像的前景

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摘要

We evaluate the feasibility of ~1H nuclear magnetic resonance (NMR) imaging with sub-micron voxel dimensions using a combination of low temperatures and dynamic nuclear polarization (DNP). Experiments are performed on nitroxide-doped glycerol-water at 9.4 T and temperatures below 40 K, using a 30 mW tunable microwave source for DNP. With DNP at 7 K, a 0.5 μL sample yields a ~1H NMR signal-to-noise ratio of 770 in two scans with pulsed spin-lock detection and after 80 db signal attenuation. With reasonable extrapolations, we infer that ~1H NMR signals from 1 μm~3 voxel volumes should be readily detectable, and voxels as small as 0.03 μm~3 may eventually be detectable. Through homonuclear decoupling with a frequency-switched Lee-Goldburg spin echo technique, we obtain 830 Hz ~1H NMR linewidths at low temperatures, implying that pulsed field gradients equal to 0.4 G/d or less would be required during spatial encoding dimensions of an imaging sequence, where d is the resolution in each dimension.
机译:我们结合低温和动态核极化(DNP)评估亚微米体素尺寸的〜1H核磁共振(NMR)成像的可行性。使用DNP的30 mW可调微波源,在9.4 T,温度低于40 K的氮氧化物掺杂甘油-水上进行了实验。在7 K的DNP条件下,两次脉冲扫描自旋锁定检测以及80 db信号衰减后,0.5μL样品在〜1H NMR信噪比为770。通过合理的推断,我们推断来自1μm〜3体素体积的〜1H NMR信号应易于检测到,最终可检测到小至0.03μm〜3的体素。通过使用频率转换的Lee-Goldburg自旋回波技术进行同核去耦,我们在低温下可获得830 Hz〜1H NMR线宽,这意味着在成像的空间编码尺寸期间需要等于0.4 G / d或更小的脉冲场梯度序列,其中d是每个维度上的分辨率。

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