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首页> 外文期刊>Journal of magnetic resonance >SCoT: Swept coherence transfer for quantitative heteronuclear 2D NMR
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SCoT: Swept coherence transfer for quantitative heteronuclear 2D NMR

机译:苏格兰苏格兰省:扫过定量异核2D NMR的连贯转移

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摘要

Nuclear magnetic resonance (NMR) spectroscopy is frequently applied in quantitative chemical analysis (qNMR). It is easy to measure one-dimensional (1D) NMR spectra in a quantitative regime (with appropriately long relaxation delays and acquisition times); however, their applicability is limited in the case of complex samples with severe peak overlap. Two-dimensional (2D) NMR solves the overlap problem, but at the cost of biasing peak intensities and hence quantitativeness. This is partly due to the uneven coherence transfer between excited/detected H-1 nuclei and the heteronuclei coupled to them (typically C-13). In the traditional approach, the transfer occurs via the evolution of a spin system state under the J-coupling Hamiltonian during a delay of a fixed length. The delay length is set on the basis of the predicted average coupling constant in the sample. This leads to disturbances for pairs of nuclei with coupling constants deviating from this average. Here, we present a novel approach based on non-standard processing of the data acquired in experiments, where the coherence transfer delay is co-incremented with non uniformly sampled evolution time. This method allows us to obtain the optimal transfer for all resonances, which improves quantitativeness. We demonstrate the concept for the coherence transfer and multiplicity-edit delays in a heteronuclear single-quantum correlation experiment (HSQC). (C) 2018 Elsevier Inc. All rights reserved.
机译:核磁共振(NMR)光谱经常用于定量化学分析(QNMR)。在定量方案中易于测量一维(1D)NMR光谱(具有适当长的放松延迟和采集时间);然而,在具有严重峰值重叠的复杂样品的情况下,它们的适用性受到限制。二维(2D)NMR解决重叠问题,但以偏置峰值强度的成本并因此的定量性。这部分是由于激发/检测到的H-1核和偶联的杂核(通常为C-13)之间不均匀的相干转移。在传统的方法中,通过在固定长度的延迟期间通过J耦合Hamiltonian下的旋转系统状态的旋转系统状态的演变发生。延迟长度基于样本中的预测平均耦合常数来设置。这导致对核的对核的紊乱导致偏离该平均值的耦合常数。这里,我们提出了一种基于实验中获取的数据的非标准处理的新方法,其中相干转移延迟与非均匀采样的演化时间共递增。该方法允许我们获得所有共振的最佳转移,这提高了核心。我们展示了异核单量子相关实验(HSQC)中相干转移和多重编辑延迟的概念。 (c)2018年Elsevier Inc.保留所有权利。

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