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首页> 外文期刊>Journal of King Saud University >How methoxy groups change nature of the thiophene based heterocyclic chalcones from p-channel to ambipolar transport semiconducting materials
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How methoxy groups change nature of the thiophene based heterocyclic chalcones from p-channel to ambipolar transport semiconducting materials

机译:甲氧基如何将基于噻吩的杂环查耳酮的性质从p通道转变为双极性传输半导体材料

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Graphical abstract Charge transport nature (p-channel/ambipolar) in heterocyclic chalcones was lime lighted with the aim that how the methoxy groups change the characteristics from p- to ambipolar performance. Electro-optical and NLO properties were tuned by comprising di-/tri-methoxy at peripheral. Mono- and di-methoxy chalcone derivatives show the ambipolar performance. Balanced λ and better hole transfer integrals result in p-channel features (tri-methoxy). Display Omitted Abstract Chalcone derivatives gained significant consideration from scientific community due to their potential applications ranging from better biological activity to the efficient semiconducting properties. Present investigation deals with the in-depth study of three chalcone derivatives (2E)-1-(2,5-Dimethyl-3-thienyl)-3-(2-methoxyphenyl)prop-2-en-1-one ( 1 ), (2E)-3-(3,4-Dimethoxyphenyl)-1-(2,5-dimethylthiophen-3-yl)prop-2-en-1-one ( 2 ), and (E)-1-(2,5-Dimethyl-3-thienyl)-3-(2,4,5-trimethoxyphenyl)prop-2-en-1-one ( 3 ) highlighting their optoelectronic, charge transport (CT) and nonlinear optical (NLO) response. The ground and excited state geometries are optimized by applying density functional theory (DFT) and time dependent DFT, respectively. The effect of electron donating groups on the frontier molecular orbitals, absorption and emission wavelengths are investigated and discussed thoroughly using the quantum chemical calculations. The comprehensive intra-molecular charge transfer (ICT) is perceived from the occupied orbitals to the unoccupied molecular orbitals. A novel structure-property relationship is established on the basis of their calculated electronic structures, frontier orbitals and density of states. The electro-optical and nonlinear optical (NLO) properties are finely tuned in the chalcone derivatives comprising of di- and tri-methoxy groups at peripheral. The nature of the p-type and ambipolar charge transport behavior of the compounds 1 – 3 is limelighted on the basis of their ionization potentials, electron affinities, reorganization energies, transfer integrals and intrinsic mobility. The mono- and di-substituted methoxy chalcone derivatives show the ambipolar performance owing to the better transfer integral and intrinsic mobility values for hole and electron. Whilst tri-methoxy at peripheral would lead the p-channel characteristics due to the balanced reorganization energy (hole and electron) and superior hole transfer integrals leads to higher hole intrinsic mobility.
机译:图形化摘要照亮了杂环查耳酮中的电荷传输性质(p通道/双极性),目的是使甲氧基基团如何将特性从p-变为双极性。通过在外围包含二-/三甲氧基来调节电光和NLO性能。单和二甲氧基查尔酮衍生物显示出双极性性能。平衡的λ和更好的空穴传输积分会产生p通道特征(三甲氧基)。查耳酮衍生物因其潜在的应用范围从更好的生物活性到有效的半导体性能而受到了科学界的广泛关注。目前的研究涉及对三种查耳酮衍生物(2E)-1-(2,5-二甲基-3-噻吩基)-3-(2-甲氧基苯基)丙-2-烯-1-酮(1)的深入研究。 ,(2E)-3-(3,4-二甲氧基苯基)-1-(2,5-二甲基噻吩-3-基)丙-2-烯-1-一(2)和(E)-1-(2 ,5-二甲基-3-噻吩基)-3-(2,4,5-三甲氧基苯基)丙-2-烯-1-酮(3)突出了它们的光电响应,电荷传输(CT)和非线性光学(NLO)响应。基态和激发态几何分别通过应用密度泛函理论(DFT)和与时间有关的DFT进行了优化。用量子化学计算研究和讨论了给电子基团对前沿分子轨道,吸收和发射波长的影响。从占据的轨道到未占据的分子轨道,可以感觉到全面的分子内电荷转移(ICT)。根据计算出的电子结构,边界轨道和状态密度,建立了一种新颖的结构-性质关系。在外围由二甲氧基和三甲氧基组成的查耳酮衍生物中,可以对电光和非线性光学(NLO)特性进行微调。基于化合物1-3的电离势,电子亲和力,重组能,转移积分和固有迁移率,它们的p型性质和双极性电荷传输行为受到关注。单和二取代的甲氧基查尔酮衍生物由于对空穴和电子的更好的转移积分和固有迁移率值而表现出双极性性能。尽管由于平衡的重组能量(空穴和电子),外围的三甲氧基会导致p沟道特性,而优异的空穴传输积分会导致更高的空穴固有迁移率。

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