Tang Yaguo, Shan Xu, Niu Shanshan, Liu Zhaohui, Wang Enliang, Watanabe Noboru, Yamazaki Masakazu, Takahashi Masahiko, Chen Xiangjun
Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China , Hefei, Anhui 230026, China.
Institute of Multidisciplinary Research for Advanced Materials, Tohoku University , Sendai 980-8577, Japan.
J Phys Chem A. 2017 Jan 12;121(1):277-287. doi: 10.1021/acs.jpca.6b10009. Epub 2017 Jan 3.
The interpretation of experimental electron momentum distributions (EMDs) of ethanol, one of the simplest molecules having conformers, has confused researchers for years. High-level calculations of Dyson orbital EMDs by thermally averaging the gauche and trans conformers as well as molecular dynamical simulations failed to quantitatively reproduce the experiments for some of the outer valence orbitals. In this work, the valence shell electron binding energy spectrum and EMDs of ethanol are revisited by the high-sensitivity electron momentum spectrometer employing symmetric noncoplanar geometry at an incident energy of 1200 eV plus binding energy, together with a detailed analysis of the influence of vibrational motions on the EMDs for the two conformers employing a harmonic analytical quantum mechanical (HAQM) approach by taking into account all of the vibrational modes. The significant discrepancies between theories and experiments in previous works have now been interpreted quantitatively, indicating that the vibrational effect plays a significant role in reproducing the experimental results, not only through the low-frequency OH and CH torsion modes but also through other high-frequency ones. Rational explanation of experimental momentum profiles provides solid evidence that the trans conformer is slightly more stable than the gauche conformer, in accordance with thermodynamic predictions and other experiments. The case of ethanol demonstrates the significance of considering vibrational effects when performing a conformational study on flexible molecules using electron momentum spectroscopy.
乙醇是具有构象异构体的最简单分子之一,其实验电子动量分布(EMD)的解释多年来一直困扰着研究人员。通过对gauche和反式构象异构体进行热平均来对戴森轨道EMD进行高水平计算以及分子动力学模拟,对于一些外层价轨道而言,未能定量重现实验结果。在这项工作中,利用高灵敏度电子动量谱仪在1200 eV加结合能的入射能量下采用对称非共面几何结构,重新研究了乙醇的价壳层电子结合能谱和EMD,并采用谐波分析量子力学(HAQM)方法详细分析了振动运动对两种构象异构体EMD的影响,其中考虑了所有振动模式。此前研究中理论与实验之间的显著差异现在已得到定量解释,表明振动效应在重现实验结果方面起着重要作用,不仅通过低频的OH和CH扭转模式,还通过其他高频模式。对实验动量分布的合理解释提供了确凿证据,表明反式构象异构体比gauche构象异构体略稳定,这与热力学预测和其他实验结果一致。乙醇的例子表明,在使用电子动量光谱对柔性分子进行构象研究时,考虑振动效应具有重要意义。