论文标题
用于分析任意自旋系统松弛特性的理论和计算框架。应用高分辨率松弛计
Theoretical and Computational Framework for the Analysis of the Relaxation Properties of Arbitrary Spin Systems. Application to High-Resolution Relaxometry
论文作者
论文摘要
多种核磁共振实验依赖于弛豫过程的预测和分析。最近,引入了创新的方法,在实验过程中,样品在各种磁场上传播,例如溶解动态核极化或高分辨率宽松计。了解核自旋系统在磁场的数量级上的松弛特性对于合理化这些实验的结果至关重要。例如,在高分辨率弛豫实验中,在样品转移期间缺乏控制核自旋松弛途径的控制和弛豫延迟导致极化衰变与理想的单指数衰减的系统偏差,并具有纯粹的纵向松弛速率。必须考虑这些偏差以定量描述系统的动力学。在这里,我们向(1)计算各种自旋系统的松弛率的分析表达式,(2)使用这些分析表达式来纠正在高分辨率宽松测量实验中产生的偏差。这些工具可以更好地理解核自旋松弛,这是提高许多脉冲序列的灵敏度所必需的,并更好地表征大分子中的运动。
A wide variety of nuclear magnetic resonance experiments rely on the prediction and analysis of relaxation processes. Recently, innovative approaches have been introduced where the sample travels through a broad range of magnetic fields in the course of the experiment, such as dissolution dynamic nuclear polarization or high-resolution relaxometry. Understanding the relaxation properties of nuclear spin systems over orders of magnitude of magnetic fields is essential to rationalize the results of these experiments. For example, during a high-resolution relaxometry experiment, the absence of control of nuclear spin relaxation pathways during the sample transfers and relaxation delays leads to systematic deviations of polarization decays from an ideal mono-exponential decay with the pure longitudinal relaxation rate. These deviations have to be taken into account to describe quantitatively the dynamics of the system. Here, we present computational tools to (1) calculate analytical expressions of relaxation rates for a broad variety of spin systems and (2) use these analytical expressions to correct the deviations arising in high-resolution relaxometry experiments. These tools lead to a better understanding of nuclear spin relaxation, which is required to improve the sensitivity of many pulse sequences, and to better characterize motions in macromolecules.