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Low cost organic photovoltaic cells for broad spectrum light harvesting.

机译:用于广谱光收集的低成本有机光伏电池。

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摘要

Organic photovoltaic technology based on conjugated polymers or small organic functional molecules, has attracted considerable attention in last two decades owing to their potential to provide flexible, lightweight, and environmentally friendly solar cells. The use of bulk heterojunction solar cells, consisting of a penetrating donor acceptor molecules within a cheap inorganic porous TiO2 matrix, is considered as one of the most promising and cost-effective approaches. However, in order to achieve a high efficiency, solar cells must absorb photons in a broad spectrum. Specifically, broad band light absorbers are needed for near infrared absorption, cell designs or materials that increase the interface area of donor-acceptor materials in the heterojunctions to provide effective exciton disassociation, and to reduce optical interference. The goal of this work was to develop cost effective organic bulk heterojunction solar cells. In order to accomplish this goal, the following objectives were established: (1) study the optical properties of the donor and acceptor materials; (2) fabricate a TiO2 matrix to increase the number of donor and acceptor molecules and reduce light interference; (3) study the surface morphology of the TiO2 films and the active layers; and (4) fabricate and characterize organic solar cells using the studied materials. The bulk heterojunction solar cells were fabricated with rare earth phthalocyanine double or triple deckers as electron donors with a perylenediimide derivative as electron acceptor. Two-types of cells with and without a TiO2 spacer layers were fabricated. The cells fabricated with the triple-decker donor had the best efficiency (0.36%), which was attributed to its strong UV-Visible and near infrared absorption and its strong pi-pi interactions between Pc planes for electron delocalization and charge transport. The photoelectric performance of double- and triple-decker photovoltaic cells was highly dependent on the decker structures, the morphology of the active layers, and the cell structures. Future work should address cell efficiency improvement from 0.36% to 4% to make this type of cell commercially valuable.
机译:基于共轭聚合物或小的有机功能分子的有机光伏技术,由于其具有提供柔性,轻便和环保的太阳能电池的潜力,在过去的二十年中引起了相当大的关注。由廉价的无机多孔TiO2基质中的穿透供体受体分子组成的块状异质结太阳能电池的使用被认为是最有前途和最具成本效益的方法之一。但是,为了获得高效率,太阳能电池必须吸收宽光谱的光子。具体地,宽带光吸收剂对于近红外吸收,电池设计或增加异质结中的供体-受体材料的界面面积以提供有效的激子解离并减少光学干扰的材料是必需的。这项工作的目标是开发具有成本效益的有机体异质结太阳能电池。为了实现该目的,建立了以下目的:(1)研究供体和受体材料的光学性质; (2)制造TiO 2基体以增加供体和受体分子的数目并减少光的干扰; (3)研究TiO2薄膜和活性层的表面形貌; (4)使用研究的材料制造和表征有机太阳能电池。整体异质结太阳能电池是用稀土酞菁双层或三层作为电子供体,并用per二酰亚胺衍生物作为电子受体来制造的。制备具有和不具有TiO 2间隔层的两种类型的电池。用三层供体制备的电池效率最高(0.36%),这归因于其对紫外线的强烈可见光和近红外吸收,以及在Pc平面之间用于电子离域和电荷传输的强大pi-pi相互作用。双层和三层光伏电池的光电性能高度依赖于甲板结构,活性层的形态和电池结构。未来的工作应将电池效率从0.36%提高到4%,以使这种类型的电池具有商业价值。

著录项

  • 作者

    Wang, Qi.;

  • 作者单位

    South Dakota State University.;

  • 授予单位 South Dakota State University.;
  • 学科 Alternative Energy.;Engineering Materials Science.;Energy.;Engineering Electronics and Electrical.;Engineering Chemical.
  • 学位 M.S.
  • 年度 2009
  • 页码 93 p.
  • 总页数 93
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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