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首页> 外文期刊>ACS Omega >An Experimental and Computational Exploration on the Electronic, Spectroscopic, and Reactivity Properties of Novel Halo-Functionalized Hydrazones
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An Experimental and Computational Exploration on the Electronic, Spectroscopic, and Reactivity Properties of Novel Halo-Functionalized Hydrazones

机译:新型卤代官能化腙的电子,光谱和反应性特性的实验与计算探索

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Herein, halo-functionalized hydrazone derivatives “2-[(6′-chloroazin-2′-yl)oxy]-N ′-(2-fluorobenzylidene) aceto-hydrazone (CPFH ), 2-[(6′-chloroazin-2′-yl)oxy]-N ′-(2-chlorobenzylidene) aceto-hydrazones (CCPH ), 2-[(6′-chloroazin-2′-yl)oxy]-N ′-(2-bromobenzylidene) aceto-hydrazones (BCPH )” were synthesized and structurally characterized using FTIR, ~(1)H-NMR, ~(13)C-NMR, and UV–vis spectroscopic techniques. Computational studies using density functional theory (DFT) and time dependent DFT at CAM-B3LYP/6-311G (d,p) level of theory were performed for comparison with spectroscopic data (FT-IR, UV–vis) and for elucidation of the structural parameters, natural bond orbitals (NBOs), natural population analysis, frontier molecular orbital (FMO) analysis and nonlinear optical (NLO) properties of hydrazones derivatives (CPFH , CCPH , and BCPH ). Consequently, an excellent complement between the experimental data and the DFT-based results was achieved. The NBO analysis confirmed that the presence of hyper conjugative interactions was pivotal cause for stability of the investigated compounds. The energy gaps in CPFH , CCPH , and BCPH were found as 7.278, 7.241, and 7.229 eV, respectively. Furthermore, global reactivity descriptors were calculated using the FMO energies in which global hardness revealed that CPFH was more stable and less reactive as compared to BCPH and CCPH . NLO findings disclosed that CPFH , CCPH , and BCPH have superior properties as compared to the prototype standard compound, which unveiled their potential applications for optoelectronic technology.
机译:本文中,卤代官能化腙衍生物“2 - [(6'-氯脲素-2'-Y1)氧] - N' - (2-氟苄基)乙酰腙( cpfH),2 - [( 6'-氯唑嗪-2'-y1)氧基] - N' - (2-氯苄基)乙酰腙( CCPH),2 - [(6'-氯嗪-2'-Y1)氧] - 使用FTIR,〜(1)H-NMR,〜(13)C-NMR和UV-Vis合成并在结构表征中合成和结构表征2-(2-溴苄基)“乙酰肼( BCph)”。光谱技术。使用密度函数理论(DFT)和时间依赖性DFT在CAM-B3LYP / 6-311G(D,P)水平的计算研究,以与光谱数据(FT-IR,UV-VI)进行比较,并阐明结构参数,天然键轨道(NBOS),天然群体分析,前沿分子轨道(FMO)分析和非线性光学(NLO)含有腙衍生物的性质( CpFH, CCPH和 BCPH)。因此,实现了实验数据与基于DFT的结果之间的优异补充。 NBO分析证实,存在超缀合相互作用的存在对于所研究的化合物的稳定性是枢转原因。发现 cpfh, ccph, bcph的能量间隙分别为7.278,7.241和7.229eV。此外,使用全局硬度揭示的FMO能量来计算全局反应性描述符,其中揭示了与 Bcph和 CCPH相比更稳定,更少的反应性。 NLO发现公开了 CpFH, CCPH和 Bcph与原型标准化合物相比具有优异的性质,其推出其用于光电技术的潜在应用。

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