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Spin-lattice relaxation study of the methyl proton dynamics in solid 9,10-dimethyltriptycene (DMT)

机译:固体9,10-二甲基三萜(DMT)中甲基质子动力学的自旋晶格弛豫研究

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Proton spin-lattice relaxation studies are performed for powder samples of 9,10-dimethyltriptycene (DMT) and its isotopomer DMT-d_(12) in which all the non-methyl protons in the molecule are replaced by deuterons. The relaxation data are interpreted in terms of the conventional relaxation theory based on the random jump model in which the Pauli correlations between the relevant spin and torsional states are discarded. The Arrhenius activation energies, obtained from the relaxation data, 25.3 and 24.8 kJ mol~(-1) for DMT and DMT-d_(12), respectively, are very high as for the methyl groups. The validity of the jump model in the present case is considered from the perspective of Haupt theory in which the Pauli principle is explicitly invoked. To this purpose, the dynamic quantities entering the Haupt model are reinterpreted in the spirit of the damped quantum rotation (DQR) approach introduced recently for the purpose of NMR lineshape studies of hindered molecular rotators. Theoretical modelling of the relevant methyl group dynamics, based on the DQR theory, was performed. From these calculations it is inferred that direct assessments of the torsional barrier heights, based on the Arrhenius activation energies extracted from relaxation data, should be treated with caution.
机译:质子自旋晶格弛豫研究是针对9,10-二甲基三茂萜(DMT)及其同位异构体DMT-d_(12)的粉末样品进行的,其中分子中的所有非甲基质子均被氘核取代。根据基于随机跳跃模型的常规松弛理论来解释松弛数据,在该随机跳跃模型中,放弃了相关自旋和扭转状态之间的Pauli相关性。从弛豫数据获得的阿累尼乌斯活化能分别为DMT和DMT-d_(12),分别为25.3和24.8 kJ mol〜(-1),与甲基基团相比非常高。从Haupt理论的角度考虑了跳跃模型在当前情况下的有效性,在Haupt理论中明确引用了Pauli原理。为此目的,本着最近引入的阻尼量子旋转(DQR)方法的精神,重新解释了进入Haupt模型的动态量,该方法旨在研究受阻分子旋转器的NMR线形。基于DQR理论,对相关的甲基动力学进行了理论建模。从这些计算中可以推断,基于从松弛数据中提取的阿累尼乌斯活化能,对扭转壁垒高度的直接评估应谨慎对待。

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