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Efficient ternary blend bulk heterojunction solar cells with tunable open-circuit voltage.

机译:具有可调开路电压的高效三元共混本体异质结太阳能电池。

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摘要

The growing energy demands facilitate the search of cheap and renewable energy. The vision of organic photovoltaics is that of a low cost solar energy conversion platform that provides lightweight, flexible solar cells that are easily incorporated into existing infrastructure with minimal impact on land usage. Organic solar cells have been a subject of growing research interest over the past quarter century, and are now developed to the point where they are on the verge of introduction into the market. Polymer solar cells provide all important characteristics necessary to fill this niche and power conversion efficiency exceeding 10% was recently achieved. However, such a high efficiencies are obtained using multi-junction solar cells which require additional steps in the manufacturing process and thus contradicts the attractive simplicity of the single step solution processing of the active layer in bulk heterojunction solar cells. A basic introduction to polymer:fullerene solar cells is presented in Chapter 1.;The current dissertation is focused on the recently emerged approach of ternary blend bulk heterojunction solar cells, where three components are mixed in the active layer, providing an alternative route to high efficiencies while preserving the simplicity of the solar cell fabrication. A general overview of this class of solar cells is presented in Chapter 2.;The key component to the efficiency increase in ternary blend bulk heterojunction solar cells is the discovered open-circuit voltage (Voc) tunability in the three component systems, which is introduced in Chapter 3. Together with the short-circuit current density (Jsc) increase obtained using polymers with complementary absorption profiles (discussed in Chapter 4), the efficiencies of the ternary blend bulk heterojunction solar cells are increased beyond that of the corresponding binary blend solar cells, as discussed in Chapter 5. By extension, this result suggests that ternary blends provide a potentially effective route toward maximizing the attainable JscxVoc product (which is directly proportional to the solar cell efficiency) in bulk heterojunction solar cells and that with judicious selection of donor and acceptor components, solar cells with efficiencies exceeding the theoretical limits for binary blend solar cells could be possible without sacrificing the simplicity of a single active layer processing step.;Finally, the formation of an organic alloy in ternary blend bulk heterojunction solar cells, introduced in Chapter 6, unravels and explains the origin of the Voc tunability and simultaneous J sc increase in three component systems.
机译:不断增长的能源需求促进了廉价和可再生能源的寻找。有机光伏的愿景是提供一种低成本的太阳能转换平台,该平台可提供轻巧,灵活的太阳能电池,这些电池可轻松整合到现有基础设施中,而对土地使用的影响最小。在过去的四分之一世纪中,有机太阳能电池一直是研究热点,现在已经发展到接近将其引入市场的地步。聚合物太阳能电池提供了填补这一空白所必需的所有重要特性,最近实现了超过10%的功率转换效率。然而,使用多结太阳能电池获得了如此高的效率,该多结太阳能电池在制造过程中需要额外的步骤,因此与本体异质结太阳能电池中的有源层的单步溶液处理的吸引人的简单性相矛盾。第1章介绍了聚合物:富勒烯太阳能电池的基本知识;本论文的重点是最近出现的三元共混本体异质结太阳能电池的方法,该方法在活性层中混合了三种成分,为实现高能级提供了另一种途径。在保持太阳能电池制造简单性的同时提高效率。第2章概述了此类太阳能电池。;提高三元共混体异质结太阳能电池效率的关键因素是在三个组件系统中发现的开路电压(Voc)可调性,并对此进行了介绍。结合使用具有互补吸收曲线的聚合物获得的短路电流密度(Jsc)的增加(在第4章中进行了讨论),三元共混本体异质结太阳能电池的效率提高到超过相应的二元共混太阳能电池的效率。正如第5章中讨论的那样。通过扩展,该结果表明,三元共混物提供了一条潜在的有效途径,可最大化散装异质结太阳能电池中可达到的JscxVoc乘积(与太阳能电池效率成正比),并且可以明智地选择供体和受体成分,效率超过二元混合物理论极限的太阳能电池最后,在第6章介绍的三元混合体异质结太阳能电池中有机合金的形成将阐明并解释Voc可调性和同步的起源。 J sc增加了三个组件系统。

著录项

  • 作者

    Khlyabich, Petr P.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Chemistry Polymer.;Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 316 p.
  • 总页数 316
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:41:39

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