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Chemical Shift Correlations from Hyperpolarized NMR Using a Single SHOT

机译:使用单个SHOT的超极化NMR的化学位移相关性

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A significant challenge in realizing the promise of the dissolution dynamic nuclear polarization technique for signal enhancement in high-resolution NMR lies in the nonrenewability of the hyperpolarized spin state. This property prevents the application of traditional two-dimensional correlation spectroscopy, which relies on regeneration of spin polarization before each successive increment of the indirect dimension. Since correlation spectroscopy is one of the most important approaches for the identification and structural characterization of molecules by NMR, it is important to find easily applicable methods that circumvent this problem. Here, we introduce the application of scaling of heteronuclear couplings by optimal tracking (SHOT) to achieve this goal. SHOT decoupling pulses have been numerically optimized on the basis of optimal control algorithms to obtain chemical shift correlations in C-H groups, either by acquiring a single one-dimensional ~(13)C spectrum with ~1H off-resonance decoupling or vice versa. Vanillin, which contains a number of functional groups, was used as a test molecule, allowing the demonstration of SHOT decoupling tailored toward simplified and accurate data analysis. This strategy was demonstrated for two cases: First, a linear response to chemical shift offset in the correlated dimension was optimized. Second, a pulse with alternating linear responses in the correlated dimension was chosen as a goal to increase the sensitivity of the decoupling response to the chemical shift offset. In these measurements, error ranges of ±0.03 ppm for the indirectly determined ~1H chemical shifts and of ±0.4 ppm for the indirectly determined ~(13)C chemical shifts were found. In all cases, we show that chemical shift correlations can be obtained from information contained in a single scan, which maximizes the ratio of signal to stochastic noise. Furthermore, a comprehensive discussion of the robustness of the method toward nonideal conditions is included based on experimental and simulated data. Unique features of this technique include the abilities to control the accuracy of chemical shift determination in spectral regions of interest and to acquire such chemical shift correlations rapidly--the latter being of interest for potential application in real-time spectroscopy.
机译:在高分辨率NMR中实现溶解动态核极化技术以增强信号的前景中,一个重大挑战在于超极化自旋态的不可更新性。此属性阻止了传统的二维相关光谱的应用,该方法依赖于间接维数每次连续递增之前自旋极化的再生。由于相关光谱是通过NMR鉴定和结构表征分子的最重要方法之一,因此重要的是找到容易应用的方法来规避此问题。在这里,我们介绍通过最佳跟踪(SHOT)缩放异核耦合的应用程序,以实现此目标。 SHOT去耦脉冲已在最佳控制算法的基础上进行了数值优化,以通过获取具有〜1H非共振去耦的单个一维〜(13)C谱获得C-H组中的化学位移相关性,反之亦然。香草醛(其中包含许多官能团)被用作测试分子,从而证明了SHOT去耦的示范性应用,旨在简化和准确地进行数据分析。在两种情况下证明了该策略:首先,优化了对相关维数中化学位移偏移的线性响应。其次,选择一个在相关维数上具有交替线性响应的脉冲作为目标,以提高去耦响应对化学位移偏移的敏感性。在这些测量中,对于间接确定的〜1H化学位移,误差范围为±0.03 ppm,对于间接确定的〜(13)C化学位移,误差范围为±0.4 ppm。在所有情况下,我们都表明,可以从单次扫描中包含的信息中获得化学位移相关性,从而最大程度地提高了信号与随机噪声的比率。此外,基于实验和模拟数据,还对该方法针对非理想条件的鲁棒性进行了全面讨论。该技术的独特功能包括能够控制感兴趣光谱区域中化学位移确定的准确性并快速获取此类化学位移相关性的能力-后者对于实时光谱学中的潜在应用很感兴趣。

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