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Efficient cross-effect dynamic nuclear polarization without depolarization in high-resolution MAS NMR

机译:在高分辨率MAS NMR中有效的交叉效应动态核极化而无去极化

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Dynamic nuclear polarization (DNP) has the potential to enhance the sensitivity of magic-angle spinning (MAS) NMR by many orders of magnitude and therefore to revolutionize atomic resolution structural analysis. Currently, the most widely used approach to DNP for studies of chemical, material, and biological systems involves the cross-effect (CE) mechanism, which relies on biradicals as polarizing agents. However, at high magnetic fields (≥5 T), the best biradicals used for CE MAS-DNP are still far from optimal, primarily because of the nuclear depolarization effects they induce. In the presence of bisnitroxide biradicals, magic-angle rotation results in a reverse CE that can deplete the initial proton Boltzmann polarization by more than a factor of 2. In this paper we show that these depolarization losses can be avoided by using a polarizing agent composed of a narrow-line trityl radical tethered to a broad-line TEMPO. Consequently, we show that a biocompatible trityl-nitroxide biradical, TEMTriPol-1, provides the highest MAS NMR sensitivity at ≥10 T, and its relative efficiency increases with the magnetic field strength. We use numerical simulations to explain the absence of depolarization for TEMTriPol-1 and its high efficiency, paving the way for the next generation of polarizing agents for DNP. We demonstrate the superior sensitivity enhancement using TEMTriPol-1 by recording the first solid-state 2D 13C–13C correlation spectrum at natural isotopic abundance at a magnetic field of 18.8 T.
机译:动态核极化(DNP)有潜力将魔角旋转(MAS)NMR的灵敏度提高多个数量级,从而彻底改变原子分辨率的结构分析。当前,最广泛使用的DNP研究化学,材料和生物系统的方法涉及交叉效应(CE)机制,该机制依赖于双自由基作为偏振剂。但是,在高磁场(≥5 T)下,用于CE MAS-DNP的最佳双自由基仍远非最佳,这主要是因为它们引起的核去极化作用。在存在双硝基氧双自由基的情况下,魔角旋转会导致反向CE,从而使初始质子玻耳兹曼极化损耗超过2倍。在本文中,我们证明了通过使用以下组成的偏振剂可以避免这些去极化损失系于宽线TEMPO的窄线三苯甲基自由基。因此,我们表明,生物相容的三苯甲基-硝基氧双自由基TEMTriPol-1在≥10 T时提供最高的MAS NMR灵敏度,并且其相对效率随磁场强度而增加。我们使用数值模拟来解释TEMTriPol-1不存在去极化及其高效性,为下一代DNP极化剂铺平了道路。通过记录第一个固态二维2D 13 C– 13 ,我们证明了使用TEMTriPol-1可以提高灵敏度。在18.8 T磁场下自然同位素丰度下的C相关谱

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