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新型 3,6-二(噻唑烷-5-酮-2-基)咔唑衍生物的发光特性:合成、光物理性质、密度泛函理论研究及晶体形态效应。

Luminescence feature of new 3,6-di(thiazolidin-5-one-2-yl)-carbazole derivative: synthesis, photophysical properties, density functional theory studies, and crystal shape effect.

机构信息

Department of Chemistry, College of Applied Sciences, Umm Al-Qura University, Makkah, Saudi Arabia.

Chemistry Department, Faculty of Science, Mansoura University, Mansoura, Egypt.

出版信息

Luminescence. 2021 Jun;36(4):904-913. doi: 10.1002/bio.4013. Epub 2021 Jan 27.

DOI:10.1002/bio.4013
PMID:33440064
Abstract

A new carbazole chromophore conjugated with substituted thiazolidine-4-one (CzPT) was synthesized by applying the Knoevenagel reaction between 3,6-diformyl-N-hexylcarbazole and ethyl 2-aceto-2-(5-oxo-3-phenylthiazolidin-2-ylidene)acetate. The chemical structure of the new derivative (CzPT) was elucidated by spectral studies. The CzPT absorption spectra in different solvents exhibited a red shift for λ by increasing solvent polarity. Bands at 430-474 nm appeared and were attributed to intramolecular charge transfer with high π-π* characteristics. CzPT fluorescence spectra exhibited a red shift after increasing the solvent polarity. To understand the Stokes' shift ( behaviour of the CzPT derivative referring to the polarity of solvents, Lippert-Mataga and linear solvation-energy relationship (LSER) models were employed in which the LSER exhibited respectable results compared with Lippert-Mataga (r = 0.9707). Moreover, time-dependent density functional theory absorption spectra in hexane and dimethylformamide showed that λ had a major contribution in the highest occupied molecular orbital to lowest unoccupied molecular orbital transition in both solvents. In addition, the reduced uniformity of crystal features may lead to dislocation or anomalous arrangement of crystals with irregular spacing, which automatically enhances the optical properties of such crystals.

摘要

一种新的咔唑生色团与取代的噻唑烷-4-酮(CzPT)通过 3,6-二醛基-N-己基咔唑与乙基 2-乙酰基-2-(5-氧代-3-苯基噻唑烷-2-亚基)乙酸酯之间的 Knoevenagel 反应合成。新衍生物(CzPT)的化学结构通过光谱研究阐明。CzPT 在不同溶剂中的吸收光谱随着溶剂极性的增加而发生红移,λ 发生红移。在 430-474nm 处出现的带归因于具有高 π-π*特征的分子内电荷转移。CzPT 荧光光谱在增加溶剂极性后发生红移。为了了解斯托克斯位移(CzPT 衍生物对溶剂极性的行为,采用了 Lippert-Mataga 和线性溶剂化能关系(LSER)模型,与 Lippert-Mataga 相比,LSER 显示出令人满意的结果(r=0.9707)。此外,在己烷和二甲基甲酰胺中的时间相关密度泛函理论吸收光谱表明,λ 在两种溶剂中的最高占据分子轨道到最低未占据分子轨道跃迁中具有主要贡献。此外,晶体特征均匀性的降低可能导致晶体的位错或异常排列,从而自动增强这些晶体的光学性质。

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