Approaching the Ultimate Limit in Measurement Precision with RASER NMR

IF 1.1 4区 物理与天体物理 Q4 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
Simon Fleischer, Sören Lehmkuhl, Lars Lohmann, Stephan Appelt
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引用次数: 0

Abstract

Radio-frequency Amplification by Stimulated Emission of Radiation (RASER) is a promising tool to study nonlinear phenomena or measure NMR parameters with unprecedented precision. Magnetic fields, J-couplings, and chemical shifts can be recorded over long periods of time without the need for radiofrequency excitation and signal averaging. One key feature of RASER NMR spectroscopy is the improvement in precision, which grows with the measurement time \(T_{{\text{m}}}^{3/2}\), unlike conventional NMR spectroscopy, where the precision increases with \(T_{{\text{m}}}^{1/2}\). However, when detecting NMR signals over minutes to hours, using available NMR magnets (ppb homogeneity), the achieved frequency resolution will eventually be limited by magnetic field fluctuations. Here, we demonstrate that full compensation is possible even for open low-field electromagnets, where magnetic field fluctuations are intrinsically present (in the ppm regime). A prerequisite for compensation is that the spectrum contains at least one isolated RASER line to be used as a reference, and the sample experiences exclusively common magnetic field fluctuations, that is, ones that are equal over the entire sample volume. We discuss the current limits of precision for RASER NMR measurements for two different cases: The single-compartment RASER involving J-coupled modes, and the two-compartment RASER involving chemically shifted species. In the first case, the limit of measurable difference approaches the Cramér-Rao lower bound (CRLB), achieving a measurement precision \({\sigma }_{f}<{10}^{-4}\) Hz. In the second case, the measured chemical shift separation is plagued by independently fluctuating distant dipolar fields (DDF). The measured independent field fluctuation between the two chambers is in the order of tens of mHz. In both cases, new limits of precision are achieved, which paves the way for sub-mHz detection of NMR parameters, rotational rates, and non-linear phenomena such as chaos and synchrony.

Abstract Image

接近激光核磁共振测量精度的极限
受激辐射射频放大技术(RASER)是一种很有前途的研究非线性现象或以前所未有的精度测量核磁共振参数的工具。磁场、j型耦合和化学位移可以在不需要射频激励和信号平均的情况下长时间记录。激光核磁共振波谱的一个关键特点是精度的提高,随着测量时间的增加\(T_{{\text{m}}}^{3/2}\),不像传统的核磁共振波谱,其精度随着\(T_{{\text{m}}}^{1/2}\)而增加。然而,当使用可用的核磁共振磁体(ppb均匀性)在几分钟到几小时内检测核磁共振信号时,所获得的频率分辨率最终将受到磁场波动的限制。在这里,我们证明了完全补偿是可能的,即使是开放的低场电磁铁,磁场波动本质上是存在的(在ppm制度)。补偿的先决条件是光谱至少包含一条隔离的雷克萨斯线作为参考,并且样品只经历普通磁场波动,即在整个样品体积上相等的波动。我们讨论了目前两种不同情况下激光核磁共振测量的精度限制:涉及j耦合模式的单室激光,以及涉及化学位移物质的双室激光。在第一种情况下,测量差的极限接近cram - rao下界(CRLB),测量精度达到\({\sigma }_{f}<{10}^{-4}\) Hz。在第二种情况下,测量的化学位移分离受到独立波动的远偶极场(DDF)的困扰。测量到的两个腔室之间的独立场波动在几十兆赫兹数量级。在这两种情况下,实现了新的精度限制,这为亚mhz检测核磁共振参数,转速和非线性现象(如混沌和同步)铺平了道路。
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来源期刊
Applied Magnetic Resonance
Applied Magnetic Resonance 物理-光谱学
CiteScore
1.90
自引率
10.00%
发文量
59
审稿时长
2.3 months
期刊介绍: Applied Magnetic Resonance provides an international forum for the application of magnetic resonance in physics, chemistry, biology, medicine, geochemistry, ecology, engineering, and related fields. The contents include articles with a strong emphasis on new applications, and on new experimental methods. Additional features include book reviews and Letters to the Editor.
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