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Zero-field nuclear magnetic resonance of chemically exchanging systems

机译:化学交换系统的零场核磁共振

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Zero- to ultralow-field (ZULF) nuclear magnetic resonance (NMR) is an emerging tool for precision chemical analysis. In this work, we study dynamic processes and investigate the influence of chemical exchange on ZULF NMR J-spectra. We develop a computational approach that allows quantitative calculation of J-spectra in the presence of chemical exchange and apply it to study aqueous solutions of [sup15/supN]ammonium (sup15/supN[Formula: see text]) as a model system. We show that pH-dependent chemical exchange substantially affects the J-spectra and, in some cases, can lead to degradation and complete disappearance of the spectral features. To demonstrate potential applications of ZULF NMR for chemistry and biomedicine, we show a ZULF NMR spectrum of [2-sup13/supC]pyruvic acid hyperpolarized via dissolution dynamic nuclear polarization (dDNP). We foresee applications of affordable and scalable ZULF NMR coupled with hyperpolarization to study chemical exchange phenomena in vivo and in situations where high-field NMR detection is not possible to implement.
机译:零至超级场(Zulf)核磁共振(NMR)是一种用于精密化学分析的新兴工具。在这项工作中,我们研究了动态过程并调查了化学交换对Zulf NMR J-Spectra的影响。我们开发一种计算方法,允许在化学交换存在下进行j-spectra的定量计算,并将其应用于[sup> 15 n]铵( 15 n [公式:请参阅文本])作为模型系统。我们表明pH依赖的化学交换基本上影响了J-Spectra,并且在某些情况下,可以导致偏差和完全消失的光谱特征。为了证明Zulf NMR对化学和生物医学的潜在应用,我们显示了通过溶解动态核极化(DDNP)的[2- 13-sup> c]丙酮酸的Zulf NMR光谱。我们预见到经济实惠和可扩展的Zulf NMR的应用,与超极化相结合,以研究体内化学交换现象,以及不可能实现高场NMR检测的情况。

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