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An Electrode Design Rule for Organic Photovoltaics Elucidated Using Molecular Nanolayers

机译:使用分子纳米层阐明的有机光伏电极设计规则

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Silane nanolayers deposited from the vapor phase onto indium-tin oxide (ITO) coated glass are shown to be an effective means of tuning the work function and stabilizing the surface of this complex ternary oxide. Using this approach a pair of model hole-extracting electrodes have been developed to investigate how the performance of bi-layer organic photovoltaics is impacted by built-in positive space charge in the critical region close to the hole-extracting electrode. The magnitude and spatial distribution of positive space charge resulting from ground-state electron transfer from the donor layer to the ITO electrode upon contact formation, is derived from direct measurements of the interfacial energetics using the Kelvin probe technique. This judiciously designed experiment shows that it is unnecessary to engineer the work function of the hole-extracting electrode to match the ionization potential of the donor layer, rather only to ensure that the former exceeds the latter, thus simplifying an important aspect of device design. In addition, it is shown that silane nanolayers at the ITO electrode surface are remarkably effective at retarding device degradation under continuous illumination.
机译:从气相沉积到涂有氧化铟锡(ITO)的玻璃上的硅烷纳米层被证明是调节功函和稳定该复合三元氧化物表面的有效手段。使用这种方法,已经开发了一对模型空穴提取电极,以研究双层有机光伏电池的性能如何受到接近空穴提取电极的关键区域中内置的正空间电荷的影响。接触形成后,基态电子从供体层转移到ITO电极的基态电子转移所产生的正空间电荷的大小和空间分布,是通过使用开尔文探针技术直接测量界面能而得出的。这项经过精心设计的实验表明,不必设计空穴提取电极的功函数以匹配施主层的电离势,而不必确保前者超过后者,从而简化了器件设计的重要方面。另外,显示出ITO电极表面处的硅烷纳米层在延迟连续照射下的器件劣化方面非常有效。

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