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零场下通过SABRE超极化检测吡啶衍生物

Detection of pyridine derivatives by SABRE hyperpolarization at zero field.

作者信息

Put Piotr, Alcicek Seyma, Bondar Oksana, Bodek Łukasz, Duckett Simon, Pustelny Szymon

机构信息

Institute of Physics, Faculty of Physics, Astronomy and Applied Computer Science, Jagiellonian University in Kraków, Kraków, 30-348, Poland.

Goethe University Frankfurt, University Hospital, Institute of Neuroradiology, Frankfurt am Main, 60528, Germany.

出版信息

Commun Chem. 2023 Jun 22;6(1):131. doi: 10.1038/s42004-023-00928-z.

Abstract

Nuclear magnetic resonance (NMR) spectroscopy is a powerful analytical tool used in modern science and technology. Its novel incarnation, based on measurements of NMR signals without external magnetic fields, provides direct access to intramolecular interactions based on heteronuclear scalar J-coupling. The uniqueness of these interactions makes each zero-field NMR spectrum distinct and useful in chemical fingerprinting. However, the necessity of heteronuclear coupling often results in weak signals due to the low abundance of certain nuclei (e.g., N). Hyperpolarization of such compounds may solve the problem. In this work, we investigate molecules with natural isotopic abundance that are polarized using non-hydrogenative parahydrogen-induced polarization. We demonstrate that spectra of hyperpolarized naturally abundant pyridine derivatives can be observed and uniquely identified whether the same substituent is placed at a different position of the pyridine ring or different constituents are placed at the same position. To do so, we constructed an experimental system using a home-built nitrogen vapor condenser, which allows for consistent long-term measurements, crucial for identifying naturally abundant hyperpolarized molecules at a concentration level of ~1 mM. This opens avenues for future chemical detection of naturally abundant compounds using zero-field NMR.

摘要

核磁共振(NMR)光谱学是现代科学技术中一种强大的分析工具。其基于在无外部磁场情况下对NMR信号进行测量的全新形式,可基于异核标量J耦合直接获取分子内相互作用信息。这些相互作用的独特性使得每个零场NMR光谱都具有独特性且在化学指纹识别中很有用。然而,由于某些原子核(如N)丰度较低,异核耦合的必要性常常导致信号较弱。对此类化合物进行超极化或许可以解决这一问题。在这项工作中,我们研究了利用非氢化仲氢诱导极化进行极化的具有天然同位素丰度的分子。我们证明,无论相同取代基是位于吡啶环的不同位置还是不同取代基位于相同位置,都可以观察并唯一识别超极化天然丰度吡啶衍生物的光谱。为此,我们构建了一个使用自制氮气蒸汽冷凝器的实验系统,该系统能够进行持续的长期测量,这对于识别浓度约为1 mM水平的天然丰度超极化分子至关重要。这为未来使用零场NMR对天然丰度化合物进行化学检测开辟了道路。

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