Department of Physics (Engg.), Annamalai University, Annamalainagar 608 002, India.
Spectrochim Acta A Mol Biomol Spectrosc. 2014 Jan 3;117:604-13. doi: 10.1016/j.saa.2013.09.043. Epub 2013 Sep 18.
A comprehensive screening of the more recent DFT theoretical approach to structural analysis is presented in this section of theoretical structural analysis. The chemical name of 2-methyl-N-[4-nitro-3-(trifluoromethyl)phenyl]-propanamide is usually called as Flutamide (In the present study it is abbreviated as FLT) and is an important and efficacious drug in the treatment of anti-cancer resistant. The molecular geometry, vibrational spectra, electronic and NMR spectral interpretation of Flutamide have been studied with the aid of density functional theory method (DFT). The vibrational assignments of the normal modes were performed on the basis of the PED calculations using the VEDA 4 program. Comparison of computational results with X-ray diffraction results of Flutamide allowed the evaluation of structure predictions and confirmed B3LYP/6-31G(d,p) as accurate for structure determination. Application of scaling factors for IR and Raman frequency predictions showed good agreement with experimental values. This is supported the assignment of the major contributors of the vibration modes of the title compound. Stability of the molecule arising from hyperconjugative interactions leading to its bioactivity, charge delocalization have been analyzed using natural bond orbital (NBO) analysis. NMR chemical shifts of the molecule were calculated using the gauge independent atomic orbital (GIAO) method. The comparison of measured FTIR, FT-Raman, and UV-Visible data to calculated values allowed assignment of major spectral features of the title molecule. Besides, Frontier molecular orbital analyze was also investigated using theoretical calculations.
在本节理论结构分析中,对结构分析的最新密度泛函理论方法进行了全面筛选。2-甲基-N-[4-硝基-3-(三氟甲基)苯基]-丙酰胺的化学名称通常称为氟他胺(在本研究中缩写为 FLT),是治疗抗癌耐药的重要有效药物。采用密度泛函理论(DFT)方法研究了氟他胺的分子几何形状、振动光谱、电子和 NMR 光谱解释。在 VEDA 4 程序中使用 PED 计算对正则模态的振动分配进行了执行。计算结果与氟他胺的 X 射线衍射结果的比较允许评估结构预测,并证实 B3LYP/6-31G(d,p) 可准确确定结构。用于 IR 和拉曼频率预测的比例因子的应用与实验值吻合良好。这支持了标题化合物振动模式的主要贡献者的分配。通过超共轭相互作用导致其生物活性的分子稳定性、电荷离域,使用自然键轨道(NBO)分析进行了分析。使用无规轨道独立原子轨道(GIAO)方法计算了分子的 NMR 化学位移。将实测的 FTIR、FT-Raman 和 UV-Visible 数据与计算值进行比较,允许对标题分子的主要光谱特征进行分配。此外,还使用理论计算研究了前沿分子轨道分析。