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Synthesis, characterisation, optical and nonlinear optical properties of thiazole and benzothiazole derivatives: a dual approach

机译:噻唑和苯并噻唑衍生物的合成,表征,光学和非线性光学性质:双方法

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In the present investigation, we employ a dual approach consisting of experimental and computational techniques to synthesise and characterise the Schiff-base including the moieties of nitrophenyl (3), nitrothiazole (5) and nitrobenzothiazole (7). The synthesised Schiff bases are confirmed by FT-IR, H-1-NMR and UV-visible spectroscopic techniques. The experimental UV-visible spectroscopic results are compared to the theoretically calculated TD-DFT results. There is a reasonably good agreement between the experimental and the theoretically calculated spectroscopic results. We also calculate the third-order nonlinear optical (NLO) polarizability () of above entitled derivatives using finite field (FF) approach and DFT methods. The compound 7 shows an amplitude of as large as 124.15x10(4) a. u., which is found to be several times larger than that of para-nitroaniline. Moreover, the partial and total density of states (PDOS and TDOS) along with electrostatic potential maps are calculated to get more physical insights into the structure-property relationship and electronic communications between terminal donor and central core acceptor moieties in the synthesised compounds. The present investigation highlights the significance of indigenously synthesised nitrothiazole and nitrobenzothiazole compounds as efficient NLO materials, which may evoke the interest of scientific community in such efficient NLO materials for their potential utilization in device applications.
机译:在本研究中,我们采用了一种双方法,包括用于合成的实验和计算技术,并表征包括硝基苯(3),硝基唑(5)和Nitrobenzoothole(7)的部分。通过FT-IR,H-1-NMR和UV可见光光谱技术证实了合成的Schiff碱基。将实验UV可见光光谱结果与理论上计算的TD-DFT结果进行比较。实验与理论计算的光谱结果之间存在相当良好的一致性。我们还计算使用有限域(FF)方法和DFT方法的上述衍生物的三阶非线性光学(NLO)极化性()。化合物7显示大小为124.15×10(4)A的幅度。你,这被发现比对硝基苯胺的几倍大。此外,所以计算状态(PDOS和TDOS)以及静电潜在地图的部分和总密度,以获得更显物理的见解,以获得合成化合物的终端供体和中央核心受体部分之间的结构性质关系和电子通信。本研究突出了本发明合成的硝基唑和硝基苯噻唑化合物作为高效NLO材料的重要性,这可能在这种有效的NLO材料中唤起科学界的兴趣,以便它们在设备应用中的潜在利用。

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