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首页> 外文期刊>The Journal of Chemical Physics >Theoretical study on the charge transfer mechanism at donor/acceptor interface: Why TTF/TCNQ is inadaptable to photovoltaics?
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Theoretical study on the charge transfer mechanism at donor/acceptor interface: Why TTF/TCNQ is inadaptable to photovoltaics?

机译:供体/受体界面电荷转移机制的理论研究:为什么TTF / TCNQ对光伏无关?

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摘要

A combined molecular dynamics (MD) and quantum chemical (QC) simulation method is utilized to investigate charge generation mechanism at TTF/TCNQ (tetrathiafulvalene/tetracyanoquinodimethane) heterojunction, which is a controversial donor/acceptor (D/A) interface for organic photovoltaic (OPV) devices. The TTF/TCNQ complexes extracted from MD simulation are classified into parallel and herringbone packings. And then, the amounts of charge transferred from ground states to different excited states and the corresponding energies of charge transfer (CT) state are compared and analyzed using QC simulation. Moreover, the electron transfer/recombination rates for these interfacial configurations are also studied. From these data, we have elucidated the underlying reason why TTF/TCNQ heterojunction is inadaptable to OPV application. One main reason is that large vertical bar Delta G(CT)vertical bar (the absolute value of Gibbs free energy change of CT) forms a large energy barrier, limiting exciton dissociation at the TTF/TCNQ heterojunction, and small vertical bar Delta G(CT)vertical bar (the absolute value of Gibbs free energy change of charge recombination) performs the easy recombination to the ground state. Published by AIP Publishing.
机译:合并的分子动力学(MD)和量子化学(QC)模拟方法用于研究TTF / TCNQ(四硫甲戊烯/四环喹啉二甲烷)异质结的电荷产生机制,其是用于有机光伏(以下)的争议供体/受体(D / A)界面( OPV)设备。从MD模拟中提取的TTF / TCNQ复合物分为平行和人字形填料。然后,使用QC仿真比较和分析从地面状态转移到不同激发态的电荷和相应的电荷转移能量(CT)状态。此外,还研究了用于这些界面配置的电子转移/重组速率。从这些数据中,我们阐明了TTF / TCNQ异质结的基本原因,为OPV应用程序不可应用。一个主要原因是大型垂直条ΔG(CT)垂直杆(吉布斯自由能量变化的CT)的绝对值形成了大的能量屏障,限制了TTF / TCNQ异质结的激子解离,以及小垂直杆Delta G( CT)垂直条(电荷重组的GIBBS自由能量变化的绝对值)对地面状态进行易于重组。通过AIP发布发布。

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