Jiangsu Key Laboratory for Chemistry of Low-Dimensional Materials, School of Chemistry and Chemical Engineering, Huaiyin Normal University, Huai'an 223001, Jiangsu Province, PR China.
Spectrochim Acta A Mol Biomol Spectrosc. 2011 Jan;78(1):449-57. doi: 10.1016/j.saa.2010.11.008. Epub 2010 Nov 23.
A series of asymmetric donor-acceptor substituted salen-type Schiff-bases have been synthesized and their structures, electronic properties and second order nonlinearities were investigated by DFT methods. In order to verify the stable of these Schiff-base derivates, the IR spectrum of these Schiff-base derivates were calculated, the result showed that these compounds are stable. The results of TD-DFT calculation indicate that the derivatives with the electron-donating group (CH3, OCH3 or N(C2H5)2) have a red shift absorption compared to derivatives with the electron-withdrawing group (NO2). The analysis of MOS indicates that the CN group has contribution to the LUMO orbital while the groups of OCH3, N(C2H5)2 and NO2 have contribution to the HOMO orbital. OCH3, N(C2H5)2 as electron rich groups, made the derivates have a larger first static hyperpolarizability. However, the compound (II) with a NO2 substituent, also has a large first static hyperpolarizability. This is probably because of the special transition model, namely the values of two oscillator strength f (fHOMO-1-LUMO=0.405, fHOMO-LUMO=0.321) are almost equal. In order to understand the influence of the energy gap (ΔE) between the HOMO and the LUMO orbitals on the first static hyperpolarizability, we calculated the energy gap (ΔE) of all Schiff-base compounds. The results show that the smaller the HOMO-LUMO energy gap is, the larger the first static hyperpolarizability is.
已经合成了一系列不对称供体-受体取代的席夫碱型水杨醛,并通过密度泛函理论(DFT)方法研究了它们的结构、电子性质和二阶非线性。为了验证这些席夫碱衍生物的稳定性,计算了这些席夫碱衍生物的红外光谱,结果表明这些化合物是稳定的。TD-DFT 计算结果表明,与具有吸电子基团(NO2)的衍生物相比,具有给电子基团(CH3、OCH3 或 N(C2H5)2)的衍生物具有红移吸收。MOS 分析表明,CN 基团对 LUMO 轨道有贡献,而 OCH3、N(C2H5)2 和 NO2 基团对 HOMO 轨道有贡献。OCH3、N(C2H5)2 作为富电子基团,使衍生物具有更大的一阶静态超极化率。然而,具有取代基 NO2 的化合物(II)也具有较大的一阶静态超极化率。这可能是由于特殊的跃迁模型,即两个振子强度 f 的值(fHOMO-1-LUMO=0.405,fHOMO-LUMO=0.321)几乎相等。为了了解 HOMO 和 LUMO 轨道之间的能隙(ΔE)对一阶静态超极化率的影响,我们计算了所有席夫碱化合物的能隙(ΔE)。结果表明,HOMO-LUMO 能隙越小,一阶静态超极化率越大。