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利用密度泛函理论对烟酰胺 N-氧化物的光谱(NMR、UV、FT-IR 和 FT-Raman)分析和理论研究。

Spectroscopic (NMR, UV, FT-IR and FT-Raman) analysis and theoretical investigation of nicotinamide N-oxide with density functional theory.

机构信息

Department of Physics, Celal Bayar University, Manisa, Turkey.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2011 Dec;83(1):250-8. doi: 10.1016/j.saa.2011.08.027. Epub 2011 Aug 25.

Abstract

The spectroscopic properties of the nicotinamide N-oxide (abbreviated as NANO, C(6)H(6)N(2)O(2)) were examined by FT-IR, FT-Raman, NMR and UV techniques. FT-IR and FT-Raman spectra in solid state were observed in the region 4000-400 cm(-1) and 3500-50 cm(-1), respectively. The (1)H and (13)C NMR spectra were recorded in DMSO. The UV absorption spectrum of the compound that dissolved in water was recorded in the range of 200-800 nm. The structural and spectroscopic data of the molecule in the ground state were calculated by using Density Functional Theory (DFT) employing B3LYP methods with the 6-311++G(d,p) basis set. The geometry of the molecule was fully optimized, vibrational spectra were calculated and fundamental vibrations were assigned on the basis of the total energy distribution (TED) of the vibrational modes, calculated with scaled quantum mechanics (SQM) method and PQS program. The optimized structure of compound was interpreted and compared with the reported experimental values. The observed vibrational wavenumbers, absorption wavelengths and chemical shifts were compared with calculated values. As a result, the optimized geometry and calculated spectroscopic data show a good agreement with the experimental results.

摘要

通过傅里叶变换红外光谱(FT-IR)、傅里叶变换拉曼光谱(FT-Raman)、核磁共振(NMR)和紫外可见光谱(UV)技术研究了烟酰胺 N-氧化物(简称 NANO,C(6)H(6)N(2)O(2))的光谱性质。在固态下观察到 FT-IR 和 FT-Raman 光谱的范围分别为 4000-400 cm(-1) 和 3500-50 cm(-1)。在 DMSO 中记录了 (1)H 和 (13)C NMR 谱。将化合物溶解在水中的紫外吸收光谱记录在 200-800nm 的范围内。采用密度泛函理论(DFT),在 B3LYP 方法和 6-311++G(d,p)基组下,计算了分子在基态下的结构和光谱数据。对分子的几何形状进行了全优化,计算了振动光谱,并根据振动模式的总能量分布(TED),通过量子力学(SQM)方法和 PQS 程序对基本振动进行了分配。对化合物的优化结构进行了解释,并与实验值进行了比较。将观察到的振动波数、吸收波长和化学位移与计算值进行了比较。结果表明,优化的几何形状和计算的光谱数据与实验结果吻合较好。

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