Kharkov Boris, Duan Xueyou, Rantaharju Jyrki, Sabba Mohamed, Levitt Malcolm H, Canary James W, Jerschow Alexej
Laboratory of Biomolecular NMR, St. Petersburg State University, St. Petersburg 199034, Russia.
Department of Chemistry, New York University, New York, NY 10003, USA.
Phys Chem Chem Phys. 2022 Mar 23;24(12):7531-7538. doi: 10.1039/d1cp05537b.
Nuclear spin singlet states are often found to allow long-lived storage of nuclear magnetization, which can form the basis of novel applications in spectroscopy, imaging, and in studies of dynamic processes. Precisely how long such polarization remains intact, and which factors affect its lifetime is often difficult to determine and predict. We present a combined experimental/computational study to demonstrate that molecular dynamics simulations and calculations can be used to fully account for the experimentally observed proton singlet lifetimes in ethyl-d-propyl-d-maleate in deuterated chloroform as solvent. The correspondence between experiment and simulations is achieved without adjustable parameters. These studies highlight the importance of considering unusual and difficult-to-control mechanisms, such as dipolar couplings to low-gamma solvent nuclei, and to residual paramagnetic species, which often can represent lifetime limiting factors. These results also point to the power of molecular dynamics simulations to provide insights into little-known NMR relaxation mechanisms.
核自旋单重态常常被发现能够实现核磁化强度的长寿命存储,这可为光谱学、成像以及动态过程研究中的新型应用奠定基础。精确确定这种极化能保持完整的时长以及影响其寿命的因素通常颇具难度。我们开展了一项实验与计算相结合的研究,以证明分子动力学模拟和计算可用于全面解释在以氘代氯仿为溶剂的乙基 - d - 丙基 - d - 马来酸酯中实验观测到的质子单重态寿命。实验与模拟之间的对应关系在无需调整参数的情况下得以实现。这些研究凸显了考虑诸如与低γ溶剂核的偶极耦合以及与残留顺磁物种的偶极耦合等异常且难以控制的机制的重要性,这些机制往往可能是寿命的限制因素。这些结果还表明了分子动力学模拟在深入了解鲜为人知的核磁共振弛豫机制方面的强大作用。