Institute of Chemistry, Faculty of Natural Sciences, Comenius University, Ilkovičova 6, 842 15, Bratislava, Slovakia.
Dipartimento di Fisica, Università di Genova, Via Dodecaneso 33, Genova, 16146, Italy.
Chemphyschem. 2021 Mar 17;22(6):533-541. doi: 10.1002/cphc.202000941. Epub 2021 Feb 17.
Photochromic hydrazones are attracting the attention in the field of photochromic systems especially due to their P-type character. To understand the structural features and their correlation with the spectroscopic data, UV-Vis, vibrational and ellipsometry spectroscopic techniques are employed with the support of density functional theory (DFT) calculations to three hydrazone derivatives based on benzoylpyridine. Interestingly, analysis of the structure shows the presence of two distinct rotamers around the pyridine ring with different energy and the well-defined conjugation path that changes due to E to Z isomerization especially in the hydrazone -C=N-NH part of the skeleton. IR and Raman spectra are analyzed, showing a higher selectivity in the Z form; moreover, the comparison with the normal modes proves the effect of the reaction on the backbone structure. The experimental results are in good agreement with the theoretical predictions, especially in the case of the Raman spectrum. The molecular polarization also changes from E to Z forms as predicted by DFT calculations. Spectroscopic ellipsometry on thin films of TOPAS doped with 10 %wt of the dimethylamino hydrazone derivative is used to prove such change at the molecular level. A modulation of the refractive index is observed, and it is correlated with the concentration of the active moiety and the calculated electronic polarizabilities.
螺吡喃类光致变色化合物由于其 P 型特征,在光致变色体系领域引起了人们的关注。为了理解结构特征及其与光谱数据的相关性,采用了紫外-可见、振动和椭圆偏振光谱技术,并结合密度泛函理论(DFT)计算,对三种基于苯甲酰吡啶的腙衍生物进行了研究。有趣的是,结构分析表明,吡啶环周围存在两种不同的扭转异构体,其能量不同,并且明确的共轭路径由于 E 到 Z 异构化而发生变化,特别是在腙 -C=N-NH 骨架部分。分析了红外和拉曼光谱,结果表明 Z 构象具有更高的选择性;此外,与正常模式的比较证明了反应对骨架结构的影响。实验结果与理论预测非常吻合,特别是在拉曼光谱的情况下。分子极化也从 E 构象到 Z 构象发生变化,这是 DFT 计算预测的。用掺杂了 10%wt 二甲基氨基腙衍生物的 TOPAS 薄膜的光谱椭圆偏振术来证明这种分子水平上的变化。观察到折射率的调制,并与活性部分的浓度和计算的电子极化率相关联。