Department of Physics, Afyon Kocatepe University, 03040 Afyonkarahisar, Turkey.
Spectrochim Acta A Mol Biomol Spectrosc. 2012 Feb 15;87:273-85. doi: 10.1016/j.saa.2011.11.051. Epub 2011 Dec 4.
In the present study, the molecular structure, vibrational and electronic transition, isotropic chemical shifts analysis of 4'-methylbiphenyl-2-carbonitrile were presented using experimental techniques (FT-IR, FT-Raman, NMR and UV) and quantum chemical calculations. FT-IR and FT-Raman spectra in solid state were observed in the region 4000-400cm(-1) and 3500-50cm(-1), respectively. The ultraviolet absorption spectrum of studied compound that dissolved in ethanol was examined in the range of 200-400nm. The (1)H and (13)C NMR spectra were recorded in DMSO solution. To determine lowest-energy molecular conformation of the title molecule, the selected torsion angle is varied every 10° and molecular energy profile is calculated from 0° to 360°. The molecular structure and spectroscopic data of the molecule in the ground state were computed by density functional theory (DFT) using 6-31++G(d,p) basis set. The complete assignments of all vibrational modes were performed on the basis of the total energy distributions (TED) of the vibrational modes, computed with scaled quantum mechanics (SQM) method. (13)C and (1)H isotropic chemical shifts were computed using the gauge-invariant atomic orbital (GIAO) method. Moreover, the highest occupied molecular orbital (HOMO) and the lowest unoccupied molecular orbital (LUMO) energies, absorption wavelength were performed by time-dependent DFT approach. The dipole moment, linear polarizability and first hyperpolarizability values were also computed. The linear polarizabilities and first hyper polarizabilities of the studied molecule indicate that the compound is a good candidate of nonlinear optical materials. Comparison of the calculated frequencies, NMR chemical shifts, absorption wavelengths with the experimental values revealed that DFT method produces good results.
在本研究中,使用实验技术(FT-IR、FT-Raman、NMR 和 UV)和量子化学计算方法,对 4'-甲基联苯-2-甲腈的分子结构、振动和电子跃迁、各向同性化学位移分析进行了研究。在固态下观察到了 FT-IR 和 FT-Raman 光谱,分别在 4000-400cm(-1) 和 3500-50cm(-1)范围内。研究化合物在乙醇中的紫外吸收光谱在 200-400nm 范围内进行了检查。在 DMSO 溶液中记录了 (1)H 和 (13)C NMR 谱。为了确定标题分子的最低能量分子构象,选择的扭转角每隔 10°变化一次,并从 0°到 360°计算分子能量曲线。在基态下,使用密度泛函理论 (DFT) 计算了分子的结构和光谱数据,使用 6-31++G(d,p)基组。基于振动模式的总能量分布 (TED),使用标量量子力学 (SQM) 方法对所有振动模式进行了完整的分配。使用规范不变原子轨道 (GIAO) 方法计算了 (13)C 和 (1)H 的各向同性化学位移。此外,通过时间相关 DFT 方法计算了最高占据分子轨道 (HOMO) 和最低未占据分子轨道 (LUMO) 能量、吸收波长。还计算了偶极矩、线性极化率和第一超极化率值。研究分子的线性极化率和第一超极化率表明,该化合物是一种良好的非线性光学材料候选物。计算频率、NMR 化学位移、吸收波长与实验值的比较表明,DFT 方法产生了良好的结果。