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Effects of charge carrier concentration in hybrid conjugated polymer/oxide photovoltaic devices.

机译:杂化共轭聚合物/氧化物光伏器件中载流子浓度的影响。

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摘要

Organic photovoltaics (OPV) represent an attractive route towards inexpensive, lightweight, and abundant renewable energy. The principal criticisms of OPV are low power conversion efficiency and unstable materials resulting in short device lifetimes. Hybrid OPV (h-OPV) devices with ZnO functioning either as the electron acceptor in the heterojunction, or as an electron transport layer in a polymer/fullerene based heterojunction, present useful device structures for investigating the functional mechanisms within OPV devices and a possible pathway towards air-stable high efficiency devices. Such use allows the vast knowledge surrounding oxide nanostructure morphology, band position, and carrier concentration control to be used in designing bulk-heterojunction OPV devices. The work presented in this thesis explores the effects of carrier concentration modulation in the polymer and/or oxide layers of these devices.;Exposure to air is known to induce chemical defects in polymer semiconductors, which act as dopants in OPV devices. This increase in doping density can be used to improve OPV devices, however the low work-function metallic electrodes are often highly air sensitive. Using a silver back electrode and a ZnO interlayer at the transparent front contact in a polymer-based bulk heterojunction device allows for fabrication and testing in air. Relatively efficient devices are fabricated in this manner, but the devices show a characteristic aging time that indicates that air is a requirement to function as a quality diode. Air exposure may be effecting any of the layers in the device, but evidence is presented that shows the increased doping density in the polymer is largely responsible for the change in device quality over this time period.;When oxides are used as the electron acceptor material in the device heterojunction, the carrier concentration in both the oxide and the polymer determine the strength of the electric field at the junction. Oxygen related doping of the polymer is a requisite for functional devices, but intentional doping of the oxide provides an additional degree of control over interfacial electric fields. By using planar hybrid heterojunctions, the utility of this effect is shown by increasing the driving force for charge separation. Interfacial barrier layers are required on highly doped ZnO to prevent recombination and preserve high fill factors.;The measurable carrier concentration in the depletion region of polymer and polymer-fullerene blend films is shown to be significantly larger under illumination than in the dark. This effect is not related to breaking of the conjugated bonds in the polymer, as is the device aging phenomenon, but stems from low mobility of photo-generated electrons. The depletion width and maximum electric field in devices are influenced by the presence of an increased effective doping density under illumination.
机译:有机光伏(OPV)代表了一条通往廉价,轻巧和丰富的可再生能源的诱人途径。 OPV的主要批评是低功率转换效率和不稳定的材料,导致设备寿命短。具有ZnO的杂化OPV(h-OPV)器件在异质结中充当电子受体,或在基于聚合物/富勒烯的异质结中充当电子传输层,提出了有用的器件结构,用于研究OPV器件中的功能机理和可能的途径面向空气稳定的高效设备。这样的使用允许围绕氧化物纳米结构形态,能带位置和载流子浓度控制的广泛知识用于设计本体异质结OPV器件。本文提出的工作探索了载流子浓度调制在这些器件的聚合物和/或氧化物层中的作用。众所周知,暴露于空气中会在聚合物半导体中引起化学缺陷,而聚合物在OPV器件中充当掺杂剂。掺杂密度的这种增加可用于改进OPV器件,但是低功函数的金属电极通常对空气敏感。在基于聚合物的本体异质结器件中的透明正面接触处使用银背面电极和ZnO中间层,可以在空气中进行制造和测试。以此方式制造了相对有效的器件,但是该器件显示出特征的老化时间,这表明空气是充当优质二极管的必要条件。暴露在空气中可能会影响器件中的任何层,但有证据表明,聚合物中掺杂密度的增加是在这段时间内器件质量变化的主要原因。;当氧化物用作电子受体材料时在器件异质结中,氧化物和聚合物中的载流子浓度决定了结处的电场强度。聚合物的氧相关掺杂是功能器件的必要条件,但是氧化物的故意掺杂提供了对界面电场的附加控制程度。通过使用平面混合异质结,可以通过增加电荷分离的驱动力来显示这种效果。在高掺杂的ZnO上需要界面阻挡层,以防止复合并保留高填充因子。聚合物和聚合物-富勒烯共混物薄膜的耗尽区中可测量的载流子浓度在光照条件下显着大于在黑暗中。这种效应与器件中的老化现象与聚合物中共轭键的断裂无关,而是源于光生电子的低迁移率。器件中的耗尽宽度和最大电场受照明条件下有效掺杂密度增加的影响。

著录项

  • 作者

    White, Matthew Schuette.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 166 p.
  • 总页数 166
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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