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首页> 外文期刊>Journal of Chemical Physics >Density functional theory study of the optical and electronic properties of oligomers based on phenyl-ethynyl units linked to triazole, thiadiazole, and oxadiazole rings to be used in molecular electronics
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Density functional theory study of the optical and electronic properties of oligomers based on phenyl-ethynyl units linked to triazole, thiadiazole, and oxadiazole rings to be used in molecular electronics

机译:基于与三唑,噻二唑和恶二唑环连接的苯基乙炔基单元的低聚物的光学和电子性质的密度泛函理论研究,用于分子电子学

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摘要

In the present work, we have studied from a theoretical perspective the geometry and electronic properties of the series of related compounds 2,5-bis(phenylethynyl)-1,3,4-thiadiazole, 2,5-bis(phenylethynyl)-1,3,4-oxadiazole, and 2,5-bis(phenylethynyl)-1,2,4-triazole as candidates for electron-conducting polymers and compounds with desirable (opto)electronic properties. The effect of the ethynyl group (CC) on the structure and electronic properties was also studied. The influence of planarity on electrical conductivity has been studied by a natural-bond-orbital analysis. The (opto)electronic properties and conducting capability were investigated through the highest occupied molecular orbital (HOMO)-lowest unoccupied molecular orbital (LUMO) gap, excitation energy, bond length alternation, LUMO energy, electron affinities, and intramolecular reorganization energy. Finally, the evolution of some properties such as optical bandgap and electron affinity with the increase of the number of repeat units in the oligomer chain has been checked. © 2010 American Institute of Physics Article Outline INTRODUCTION COMPUTATIONAL METHODOLOGY RESULTS AND DISCUSSIONS Molecular geometry Influence of planarity on intrachain transference of charge Highest occupied molecular orbital –LUMO energies and optical bandgap Charge injection CONCLUSION
机译:在本工作中,我们从理论角度研究了一系列相关化合物2,5-双(苯基乙炔基)-1,3,4-噻二唑,2,5-双(苯基乙炔基)-1的几何和电子性质,3,4-恶二唑和2,5-双(苯基乙炔基)-1,2,4-三唑作为电子导电聚合物和具有所需(光电)电子性质的化合物的候选物。还研究了乙炔基(CC)对结构和电子性能的影响。通过自然键轨道分析研究了平面度对电导率的影响。通过最高占据分子轨道(HOMO)-最低未占据分子轨道(LUMO)间隙,激发能,键长交替,LUMO能量,电子亲和力和分子内重组能研究了(光电)电子性能和导电能力。最后,已经检查了随着低聚物链中重复单元数目的增加,诸如光学带隙和电子亲和力的某些性质的演变。 ©2010美国物理研究所文章概要引言计算方法论结果与讨论分子几何学平面度对电荷链内转移的影响最高分子轨道-LUMO能量和光学带隙电荷注入结论

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