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Singlet excitation in the intermediate magnetic equivalence regime and field-dependent study of singlet-triplet leakage

机译:中间磁性等效制度的单线激发和术语依赖性研究单次渗漏

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摘要

The examination and optimized preparation of nuclear spin singlet order has enabled the development of new types of applications that rely on potentially long-term polarization storage. Lifetimes several orders of magnitude longer than T-1 have been observed. The efficient creation of such states relies on special pulse sequences. The extreme cases of very large and very small magnetic equivalence received primary attention, while relatively little effort has been directed towards studying singlet relaxation in the intermediate regime. The intermediate case is of interest as it is relevant for many spin systems, and would also apply to heteronuclear systems in very low magnetic fields. Experimental evidence for singlet-triplet leakage in the intermediate regime is sparse. Here we describe a pulse sequence for efficiently creating singlets in the intermediate regime in a broad-band fashion. Singlet lifetimes are studied with a specially synthesized molecule over a wide range of magnetic fields using a home-built sample-lift apparatus. The experimental results are supplemented with spin simulations using parameters obtained from ab initio calculations. This work indicates that the chemical shift anisotropy (CSA) mechanism is relatively weak compared to singlet-triplet leakage for the proton system observed over a large magnetic field range. These experiments provide a mechanism for expanding the scope of singlet NMR to a larger class of molecules, and provide new insights into singlet lifetime limiting factors.
机译:核旋转单线顺序的检查和优化准备使得开发了依赖于潜在的长期极化储存的新型应用。寿命已经观察到比T-1长的几个数量级。有效地创建这些状态依赖于特殊脉冲序列。非常大而非常小的磁性当量的极端情况受到了主要关注,而相对较少的努力已经朝着在中间方案中研究单线松弛。中间壳体具有感兴趣的,因为它与许多自旋系统相关,并且还将适用于非常低的磁场中的异核系统。中间方案中单身三联渗漏的实验证据是稀疏的。在这里,我们描述了一种脉冲序列,用于以宽带方式在中间方案中有效地创建单个单曲。使用家用的采样升降装置在各种磁场上用特殊合成的分子进行单次寿命。使用从AB Initio计算获得的参数补充了实验结果。与在大型磁场范围内观察到的质子系统的单向三重态泄漏相比,该工作表明化学变速各向异性(CSA)机制相对较弱。这些实验提供了扩展单态NMR至较大类别分子的机制,并为单线时寿命限制因素提供新的见解。

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