材料科学
光电流
有机太阳能电池
化学物理
蒙特卡罗方法
原子物理学
活化能
介电谱
分子物理学
光解
载流子
光化学
电化学
物理
物理化学
电极
化学
光电子学
聚合物
统计
复合材料
数学
作者
Stavros Athanasopoulos,F. Schauer,Vojtěch Nádaždy,Mareike Weiß,Frank‐Julian Kahle,Ullrich Scherf,H. Bäßler,Anna Köhler
标识
DOI:10.1002/aenm.201900814
摘要
Abstract The high efficiencies reported for organic solar cells and an almost negligible thermal activation measured for the photogeneration of charge carriers have called into question whether photoinduced interfacial charge transfer states are bound by a significant coulomb attraction, and how this can be reconciled with very low activation energies. Here, this question is addressed in a combined experimental and theoretical approach. The interfacial binding energy of a charge‐transfer state in a blend of MeLPPP:PCBM is determined by using energy resolved electrochemical impedance spectroscopy and is found to be about 0.5 eV. Temperature‐dependent photocurrent measurements on the same films, however, give an activation energy that is about one order of magnitude lower. Using analytical calculations and Monte Carlo simulation the authors illustrate how i) interfacial energetics and ii) transport topology reduce the activation energy required to separate the interfacial electron–hole pair, with about equal contributions from both effects. The activation energy, however, is not reduced by entropy, although entropy increases the overall photodissociation yield.
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