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First-Principle Based Modeling of Electron and Hole Transfer in Amorphous Polyethylene Terephthalate Oligomer

机译:基于第一原理的非晶态聚对苯二甲酸乙二醇酯低聚物中电子和空穴转移的建模

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Recently, we have proposed a first-principles based multi-scale modeling method for studying carrier transport properties in polymers with flexible backbones, and have successfully modeled hole transfer in polyethylene (PE). In this study, in order to see if we can model carrier transport in more complex polymers, we have utilized the multi-scale modeling method to simulate the time-of-flight carrier transients in polyethylene terephthalate (PET). When the electrostatic disorder was taken into account, the computed electron and hole mobilities were in reasonable agreement with experimental data, indicating that the multi-scale modeling technique can most likely be applied to other polymer dielectrics as well. Simulated current waveform was dispersive to a certain extent due to the disordered energetic landscape of the hopping site energies. Unlike the case for hole transfer in PE where the energetic disorder is dominated by the conformational disorder of the polymer chain, the energetic disorder for the electron and hole transfer in PET oligomer was dominated by the electrostatic disorder, which is caused by the local dipole of the PET molecule.
机译:最近,我们提出了一种基于第一性原理的多尺度建模方法,用于研究具有柔性主链的聚合物中的载流子传输特性,并已成功地对聚乙烯(PE)中的空穴转移进行了建模。在这项研究中,为了了解是否可以对更复杂的聚合物中的载流子传输进行建模,我们利用了多尺度建模方法来模拟聚对苯二甲酸乙二醇酯(PET)中飞行时间的瞬变。考虑到静电干扰后,计算出的电子和空穴迁移率与实验数据基本吻合,这表明多尺度建模技术也很可能也可以应用于其他聚合物电介质。由于跳跃点能量的无序能量态,模拟电流波形在一定程度上具有分散性。与PE中的空穴传输由聚合物链的构象无序主导的情况不同,PET低聚物中电子和空穴传输的高能紊乱由静电无序主导,这是由电子的局部偶极子引起的。 PET分子。

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