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Determination of energy level alignment at interfaces of hybrid and organic solar cells under ambient environment

机译:确定环境下混合太阳能电池和有机太阳能电池界面的能级对准

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摘要

Device function in organic electronics is critically governed by the transport of charge across interfaces of dissimilar materials. Accurate measurements of energy level positions in organic electronic devices are therefore necessary for assessing the viability of new materials and optimizing device performance. In contrast to established methods that are used in solution or vacuum environments, here we combine Kelvin probe measurements performed in ambient environments to obtain work function values with photoelectron spectroscopy in air to obtain ionization potential, so that a complete energy level diagram for organic semiconductors can be determined. We apply this new approach to study commonly used electron donor and acceptor materials in organic photovoltaics (OPV), including poly(3-hexylthiophene) (P3HT), [6,6]-phenyl C61 butyric acid methyl ester (PCBM), and ZnO, as well as examine new materials. Band alignments across the entire OPV devices are constructed and compared with actual device performance. The ability to determine interfacial electronic properties in the devices enables us to answer the outstanding question: why previous attempts to make OPV devices using 6,13-bis(triisopropylsilylethynyl) (TlPS)-pentacene as the electron donor were not successful.
机译:有机电子设备中的设备功能受跨不同材料界面的电荷传输的严格控制。因此,有必要对有机电子设备中的能级位置进行精确测量,以评估新材料的可行性并优化设备性能。与在溶液或真空环境中使用的已建立方法相反,这里我们将在环境中执行的开尔文探针测量与空气中的光电子能谱结合起来,以获取功函数值,从而获得电离势,因此有机半导体的完整能级图可以被确定。我们采用这种新方法来研究有机光伏(OPV)中常用的电子给体和受体材料,包括聚(3-己基噻吩)(P3HT),[6,6]-苯基C61丁酸甲酯(PCBM)和ZnO ,并检查新材料。构建了整个OPV设备的频段对齐方式,并将其与实际设备性能进行比较。确定器件中界面电子性质的能力使我们能够回答一个悬而未决的问题:为什么以前尝试使用6,13-​​双(三异丙基甲硅烷基乙炔基)(TlPS)-并五苯作为电子供体来制造OPV器件的尝试没有成功。

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