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首页> 外文期刊>Journal of physical chemistry letters >Intercalated vs Nonintercalated Morphologies in Donor-Acceptor Bulk Heterojunction Solar Cells: PBTTT:Fullerene Charge Generation and Recombination Revisited
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Intercalated vs Nonintercalated Morphologies in Donor-Acceptor Bulk Heterojunction Solar Cells: PBTTT:Fullerene Charge Generation and Recombination Revisited

机译:在供体 - 受体散装杂交太阳能电池中嵌入的vs非含有形态学:PBTTT:重新发现富勒烯电荷产生和重组

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In this Letter, we study the role of the donor:acceptor interface nanostructure upon charge separation and recombination in organic photovoltaic devices and blend films, using mixtures of PBTTT and two different fullerene derivatives (PC70BM and ICTA) as models for intercalated and nonintercalated morphologies, respectively. Thermodynamic simulations show that while the completely intercalated system exhibits a large free-energy barrier for charge separation, this barrier is significantly lower in the nonintercalated system and almost vanishes when energetic disorder is included in the model. Despite these differences, both femtosecond-resolved transient absorption spectroscopy (TAS) and time-delayed collection field (TDCF) exhibit extensive first-order losses in both systems, suggesting that geminate pairs are the primary product of photoexcitation. In contrast, the system that comprises a combination of fully intercalated polymer:fullerene areas and fullerene-aggregated domains (1:4 PBTTT:PC70BM) is the only one that shows slow, second-order recombination of free charges, resulting in devices with an overall higher short-circuit current and fill factor. This study therefore provides a novel consideration of the role of the interfacial nanostructure and the nature of bound charges and their impact upon charge generation and recombination.
机译:在这封信中,我们研究了施主的作用:受体接口纳米结构在有机光伏器件中的电荷分离和重组时,使用PBTTT和两种不同的富勒烯衍生物(PC70BM和ICTA)作为插层和洪水形态的模型,分别。热力学模拟表明,虽然完全插入的系统表现出用于电荷分离的大型自由能屏障,但在模型中包含精力障碍时,这种屏障显着降低,几乎消失。尽管存在这些差异,但是Femtosecond Demarlated瞬态吸收光谱(TAS)和时间延迟收集场(TDCF)在两个系统中表现出广泛的一阶损耗,表明Geminate对是光呼吸的主要产品。相反,包括完全插入聚合物的组合的系统:富勒烯区域和富勒烯聚集结构域(1:4 PBTTT:PC70BM)是唯一一个显示慢速电荷的二阶重组的唯一一个,导致具有带的器件整体较高的短路电流和填充因子。因此,该研究提供了对界面纳米结构的作用和结束电荷性质的重要考虑及其对电荷产生和重组的影响。

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