School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138, USA.
J Magn Reson. 2011 Oct;212(2):402-11. doi: 10.1016/j.jmr.2011.07.024. Epub 2011 Aug 11.
The paper describes two-dimensional solid state NMR experiments that use powdered dephased antiphase coherence (γ preparation) to encode chemical shifts in the indirect dimension. Both components of this chemical shift encoded gamma-prepared states can be refocused into inphase coherence by a recoupling element. This helps to achieve sensitivity enhancement in 2D NMR experiments by quadrature detection. The powder dependence of the gamma-prepared states allows for manipulating them by suitable insertion of delays in the recoupling periods. This helps to design experiments that suppress diagonal peaks in 2D spectra, leading to improved resolution. We describe some new phase modulated heteronuclear and homonuclear recoupling pulse sequences that simplify the implementation of the described experiments based on γ prepared states. Recoupling in the heteronuclear spin system is achieved by matching the difference in the amplitude of the sine/cosine modulated phase on the two rf-channels to the spinning frequency while maintaining the same power on the two rf-channels.
本文描述了二维固态 NMR 实验,该实验使用粉末去相位反相相干(γ 制备)在间接维度上对化学位移进行编码。这种化学位移编码的γ 制备态的两个分量可以通过重聚元件重新聚焦为同相相干。这有助于通过正交检测在 2D NMR 实验中实现灵敏度增强。γ 制备态的粉末依赖性允许通过在重聚周期中适当插入延迟来操纵它们。这有助于设计在 2D 光谱中抑制对角峰的实验,从而提高分辨率。我们描述了一些新的相调制异核和同核重聚脉冲序列,这些序列基于 γ 制备态简化了所描述实验的实现。通过将两个射频通道上的正弦/余弦调制相位幅度的差异与旋转频率相匹配,同时保持两个射频通道上的相同功率,从而实现异核自旋系统中的重聚。