Estimation of the Charge Mobility of Phenanthroline derivatives with the view of Density Functional Theory: Reorganization Energy and Charge Transfer Integral are in play

Zeynep TÜRKMEN BULCA, G. Yakalı
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Abstract

Molecular arrangement and noncovalent interactions in organic materials greatly influence the charge mobility in organic light-emitting diodes (OLEDs), organic photovoltaics (OPVs), and organic field-effect transistors (OFETs). In the light of the this argument, we examined the electronic properties of the phenanthroline derivatives by considering the charge mobility with the combination of density functional theory and Marcus Charge Transfer Theory. The drift electron mobility of the molecule 1 and 2 were determined to 21.13 cm2 V-1 s-1 and 18.00 cm2 V-1 s-1, respectively through J type π⋯π stacking interactions created by small perpendicular distances between the adjacent rings. The effective charge pathways of the molecules were generated with strong π⋯π stacking interactions consolidated by noncovalent interactions in their solid phases. The electron reorganization energy for both molecules were determined smaller than that of holes which means they have n-type semiconductor properties. The charge transfer integrals were calculated with the optimization of molecules’ dimer configurations that the theoretical results demonstrate the charge transfer integral depends on the distance between the stacking rings. High charge transfer integral and small reorganization energy give the high charge mobility fort he semiconductor molecules. Beside the mobility, energy band gap, ionization potential, electron and hole injection barriers of the molecules were interpreted to further understand their electronic properties. Due to the small LUMO values which provide n-type molecule and small electron injection barrier. From the our work both molecules can be effective n type organic semiconductor devices with the high mobility and can be modified for more efficient charge transport in phenanthroline derivatives.
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用密度泛函理论估算菲罗啉衍生物的电荷迁移率:重组能和电荷转移积分在起作用
有机材料中的分子排列和非共价相互作用在很大程度上影响着有机发光二极管(OLED)、有机光伏(OPV)和有机场效应晶体管(OFET)中的电荷迁移率。有鉴于此,我们结合密度泛函理论和马库斯电荷转移理论,通过考虑电荷迁移率研究了菲罗啉衍生物的电子特性。通过相邻环之间较小的垂直距离产生的 J 型 π⋯π 堆积相互作用,确定了分子 1 和分子 2 的漂移电子迁移率分别为 21.13 cm2 V-1 s-1 和 18.00 cm2 V-1 s-1。分子的有效电荷通路是通过固相中的非共价相互作用巩固的强π⋯π堆积相互作用产生的。经测定,这两种分子的电子重组能均小于空穴,这意味着它们具有 n 型半导体特性。通过优化分子的二聚构型,计算了电荷转移积分,理论结果表明电荷转移积分取决于堆叠环之间的距离。高电荷转移积分和小重组能使半导体分子具有高电荷迁移率。除了迁移率之外,还对分子的能带间隙、电离电势、电子和空穴注入势垒进行了解释,以进一步了解它们的电子特性。由于 LUMO 值较小,这就提供了 n 型分子和较小的电子注入势垒。根据我们的研究成果,这两种分子都可以成为具有高迁移率的有效 n 型有机半导体器件,并且可以对菲罗啉衍生物进行改性,以提高电荷传输效率。
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