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Interfacial composition of the oxide-donor interface: Probing morphology and charge injection/extraction in organic photovoltaics.

机译:氧化物-供体界面的界面组成:有机光伏中的形态探测和电荷注入/萃取。

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摘要

The role of the transparent conducting oxide (TCO) and the organic donor material interface in small molecule planar heterojunction (PHJ) and bulk heterojunction (BHJ) solar cells (OPV) was investigated and are presented as three projects: 1) the influence of the electrode surface composition and energetics on small molecule organic solar cell performance: Polar vs. non-polar donors on indium tin oxide (ITO) contacts, 2) the study of the oxide donor contact electrical properties utilizing metal-insulator-semiconductor capacitor (MIS-C) devices to probe the dark current contributions of a single interface in organic solar cells, 3) the role of the hole transport layer type and morphology in small molecule BHJ solar cells: correlating trap state density with OPV performance and d) using fluorinated subphthalocyanines as multifunctional materials in OPVs.;Organic semiconductor material properties are varied and the role of each class of material functions differently when incorporated into an organic photovoltaic. Polar donor materials such as indium (III) phthalocyanine chloride (ClInPc) adopt different molecular configurations on high work function ITO electrodes as opposed to low work function electrodes which sets itself apart from non-polar electron donating materials. We find that not only does molecular orientation effect the optical properties of these thin films, but the charge transfer properties that occur at the oxide/donor interface influence the overall device performance in OPVs and can be probed using MIS-C devices and high resolution photoemission spectroscopy. We also investigate how the morphology of the hole selective interlayer in BHJ OPVs influences the resulting trap state density and OPV performance.
机译:研究了透明导电氧化物(TCO)和有机施主材料界面在小分子平面异质结(PHJ)和本体异质结(BHJ)太阳能电池(OPV)中的作用,并提出了三个项目:1)影响电极表面组成和小分子有机太阳能电池性能的能量学:氧化铟锡(ITO)触点上的极性供体与非极性供体; 2)利用金属-绝缘体-半导体电容器(MIS- C)探测有机太阳能电池中单个界面的暗电流贡献的设备; 3)小分子BHJ太阳能电池中空穴传输层类型和形态的作用:使阱态密度与OPV性能相关; d)使用氟化的亚酞菁。作为OPV中的多功能材料。有机半导体材料的性能各不相同,并且在整合成int时每种材料的作用不同o有机光伏。极性供体材料(例如,铟(III)酞菁氯化物(ClInPc))在高功函数ITO电极上采用不同的分子构型,而低功函数电极则将其自身与非极性电子给体材料区分开。我们发现,分子取向不仅会影响这些薄膜的光学性能,而且在氧化物/施主界面处发生的电荷转移性能会影响OPV的整体器件性能,并且可以使用MIS-C器件和高分辨率光发射进行探测。光谱学。我们还研究了BHJ OPV中的空穴选择性中间层的形态如何影响所形成的陷阱态密度和OPV性能。

著录项

  • 作者

    Gantz, Jeremy L.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Chemistry Biochemistry.;Engineering Materials Science.;Chemistry Physical.;Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 259 p.
  • 总页数 259
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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