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首页> 外文期刊>ACS applied materials & interfaces >Crucial Role of the Electron Transport Layer and UV Light on the Open-Circuit Voltage Loss in Inverted Organic Solar Cells
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Crucial Role of the Electron Transport Layer and UV Light on the Open-Circuit Voltage Loss in Inverted Organic Solar Cells

机译:电子传输层和UV光在倒有机太阳能电池中的开路电压损失上的关键作用

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摘要

Understanding the degradation mechanisms in organic photovoltaics is crucial in order to develop stable organic semiconductors and robust device architectures. The rapid loss of efficiency, referred to as burn-in, is a major issue to be addressed. This study reports on the influence of the electron transport layer (ETLs) and UV light on the drop-of open-circuit voltage (V-oc) for P3HT:PC60 BM-based devices. The results show that V-oc loss is induced by the UV and, more importantly, that the ETL can amplify it, with TiOx yielding a stronger drop than ZnO. Using impedance spectroscopy (IS) and X-ray photoelectron spectroscopy (XPS), different degradation mechanisms were identified according to whether the ETL is TiOx or ZnO. For TiOx-based devices, the formation of an interface dipole was identified, resulting, in a loss of the flat-band potential (V-oc,) and, thus, of the V-oc . For ZnO-based devices, chemical modifications of the metal oxide and active layer at the interface were detected, resulting in a doping of the active layer which impacts the V-oc. This study highlights the role of the architecture and, more specifically, of the ETL in the severity of burn-in and degradation pathways.
机译:理解有机光伏中的降解机制至关重要,以便开发稳定的有机半导体和鲁棒装置架构。效率的迅速丧失,称为Burn-In,是要解决的主要问题。本研究报告了电子传输层(ETL)和UV光对P3HT:PC60 BM的装置的开路电压(V-OC)的影响。结果表明,UV诱导V-OC损耗,更重要的是,ETL可以扩增它,TiOx产生比ZnO更强的滴。使用阻抗光谱(IS)和X射线光电子能谱(XPS),根据ETL是否为TiOx或ZnO来鉴定不同的劣化机制。对于基于TiOx的设备,识别界面偶极子的形成,导致平带电位(V-OC)的损失,因此,V-OC的损失。对于基于ZnO的装置,检测界面处的金属氧化物和有源层的化学修饰,导致掺杂的活性层,其影响V-OC。本研究强调了架构的作用,更具体地,燃烧和降解途径严重程度中的ETL。

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