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首页> 外文期刊>Journal of physical chemistry letters >Pulsed Electron Decoupling and Strategies for Time Domain Dynamic Nuclear Polarization with Magic Angle Spinning
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Pulsed Electron Decoupling and Strategies for Time Domain Dynamic Nuclear Polarization with Magic Angle Spinning

机译:用魔法角旋转脉冲电子去耦和时域动态核极化的策略

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摘要

Magic angle spinning (MAS) dynamic nuclear polarization (DNP) is widely used to increase nuclear magnetic resonance (NMR) signal intensity. Frequency-chirped microwaves yield superior control of electron spins and are expected to play a central role in the development of DNP MAS experiments. Time domain electron control with MAS has considerable promise to improve DNP performance at higher fields and temperatures. We have recently demonstrated that pulsed electron decoupling using frequency-chirped microwaves improves MAS DNP experiments by partially attenuating detrimental hyperfine interactions. The continued development of pulsed electron decoupling will enable a new suite of MAS DNP experiments that transfer polarization directly to observed spins. Time domain DNP transfers to nuclear spins in conjunction with pulsed electron decoupling is described as a viable avenue toward DNP-enhanced, high-resolution NMR spectroscopy over a range of temperatures from <6 to 320 K.
机译:魔法角纺(MAS)动态核偏振(DNP)广泛用于增加核磁共振(NMR)信号强度。 频率啁啾微波产生电子旋转的卓越控制,预计将在DNP MAS实验的发展中发挥核心作用。 与MAS的时域电子控制具有相当大的希望,可以在更高的领域和温度下改善DNP性能。 我们最近证明了使用频率啁啾微波的脉冲电子解耦通过部分衰减有害的血红细相互作用来改善MAS DNP实验。 脉冲电子去耦的持续发展将使新的MAS DNP实验套件,即直接转移极化以观察到的旋转。 与脉冲电子去耦合的时域DNP转移到脉冲电子去耦合被描述为DNP增强的高分辨率NMR光谱的可行性大道,在<6至320K的温度范围内。

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