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Quantitative Rate Determination by Dynamic Nuclear Polarization Enhanced NMR of a Diels-Alder Reaction

机译:通过动态核极化增强NMR测定Diels-Alder反应的定量速率

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Emerging techniques for hyperpolarization of nuclear spins, foremost dynamic nuclear polarization (DNP), lend unprecedented sensitivity to nuclear magnetic resonance spectroscopy. Sufficient signal can be obtained from a single scan, and reactions even far from equilibrium can be studied in real-time. When following the progress of a reaction by nuclear magnetic resonance, however, spin relaxation occurs concomitantly with the reaction to alter resonance line intensities. Here, we present a model for accounting for spin-relaxation in such reactions studied by hyperpolarized NMR. The model takes into account auto- and cross-relaxation in dipole-dipole coupled spin systems and is therefore applicable to NMR of hyperpolarized protons, the most abundant NMR-active nuclei. Applied to the Diels-Alder reaction of 1,4-dipheneylbutadiene (DPBD) with 4-phenyl-1,2,4-triazole-3,5-dione (PTD), reaction rates could be obtained accurately and reproducibly. Additional parameters available from the same experiment include relaxation rates of the reaction product, which may yield further information about the molecular properties of the product. The method presented is also compatible with an experiment where a single spin in the reactant is labeled in its spin-state by a selective radio frequency pulse for subsequent tracking through the reaction, allowing the unambiguous identification of its position in the product molecule. In this case, the chemical shift specificity of high-resolution NMR can allow for the simultaneous determination of reaction rates and mechanistic information in one experiment.
机译:核自旋超极化的新兴技术,最重要的是动态核极化(DNP),为核磁共振光谱学带来了前所未有的灵敏度。一次扫描即可获得足够的信号,甚至可以实时研究甚至远未达到平衡的反应。然而,当通过核磁共振追踪反应的进行时,伴随反应发生自旋弛豫以改变共振线强度。在这里,我们提供了一个模型,用于说明通过超极化NMR研究的此类反应中的自旋弛豫。该模型考虑了偶极-偶极耦合自旋系统中的自动弛豫和交叉弛豫,因此适用于超极化质子的NMR,超极化质子是最丰富的NMR活性核。将其应用于1,4-二苯甲酰基丁二烯(DPBD)与4-苯基-1,2,4-三唑-3,5-二酮(PTD)的Diels-Alder反应中,可以准确,可重复地获得反应速率。可从同一实验获得的其他参数包括反应产物的弛豫速率,这可能会产生有关产物分子特性的更多信息。提出的方法也与实验兼容,在实验中,反应物的单旋以选择性的射频脉冲标记为自旋状态,以便随后跟踪反应,从而可以明确鉴定其在产物分子中的位置。在这种情况下,高分辨率NMR的化学位移特异性可以在一个实验中同时确定反应速率和机理信息。

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