Low-frequency vibrational modes of benzoic acid investigated by terahertz time-domain spectroscopy and theoretical simulations

Hui Yan, W. Fan, Zhuan-ping Zheng
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Abstract

In this paper, the low-frequency vibrational modes of crystalline benzoic acid (BA) have been investigated by terahertz time-domain spectroscopy (THz-TDS) and theoretical simulations based on the linearity combination of atomic orbital within the Density Functional Theory (DFT) as well as ab initio molecular orbital method at second-order Moller-Plesset Perturbation Theory (MP2) level for single molecule and dimer. Experimentally, a series of prominent absorption features of pure benzoic acid relevant to intra- and inter-molecular vibrational modes have been obtained below 4 THz at room temperature. For the theoretical simulations, geometry-optimization results of bond lengths and dihedral angles in both BA monomer and dimer are very close to experimental neutron diffraction measurements. Furthermore, the simulation results demonstrate absorption profile centered at 1.89 THz contains low-frequency modes of Ph-COOH twisting due to intramolecular motion and cogwheel owing to intermolecular motion. All the intra- and inter-molecular vibrational modes measured have also been assigned.
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用太赫兹时域光谱和理论模拟研究了苯甲酸的低频振动模式
本文利用太赫兹时域光谱(THz-TDS)和基于密度泛函理论(DFT)内原子轨道线性组合的理论模拟,以及从头算分子轨道方法在二阶Moller-Plesset摄动理论(MP2)水平上研究了结晶苯甲酸(BA)单分子和二聚体的低频振动模式。实验结果表明,在室温下,纯苯甲酸在低于4太赫兹的分子内和分子间振动模式下具有一系列显著的吸收特征。在理论模拟中,BA单体和二聚体的键长和二面角的几何优化结果与实验中子衍射结果非常接近。此外,模拟结果表明,以1.89 THz为中心的吸收曲线包含分子内运动引起的Ph-COOH扭曲和分子间运动引起的齿轮的低频模式。所有测量的分子内和分子间振动模式也被指定。
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