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Charge Photogeneration Experiments and Theory in Aggregated Squaraine Donor Materials for Improved Organic Solar Cell Efficiencies.

机译:聚集的方石英供体材料中的电荷光生实验和理论,用于提高有机太阳能电池效率。

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摘要

Fossil fuel consumption has a deleterious effect on humans, the economy, and the environment. Renewable energy technologies must be identified and commercialized as quickly as possible so that the transition to renewables can happen at a minimum of financial and societal cost. Organic photovoltaic cells offer an inexpensive and disruptive energy technology, if the scientific challenges of understanding charge photogeneration in a bulk heterojunction material can be overcome. At RIT, there is a strong focus on creating new materials that can both offer fundamentally important scientific results relating to quantum photophysics, and simultaneously assist in the development of strong candidates for future commercialized technology. In this presentation, the results of intensive materials characterization of a series of squaraine small molecule donors will be presented, as well as a full study of the fabrication and optimization required to achieve >4% photovoltaic cell efficiency. A relationship between the molecular structure of the squaraine and its ability to form nanoscale aggregates will be explored. Squaraine aggregation will be described as a unique optoelectronic probe of the structure of the bulk heterojunction. This relationship will then be utilized to explain changes in crystallinity that impact the overall performance of the devices. Finally, a predictive summary will be given for the future of donor material research at RIT.
机译:化石燃料消耗对人类,经济和环境都具有有害影响。必须尽快确定可再生能源技术并将其商业化,以便向可再生能源过渡可以以最小的财务和社会成本实现。如果可以克服理解体异质结材料中电荷光生的科学难题,有机光伏电池将提供一种廉价且具有破坏性的能源技术。在RIT,人们非常注重创建新材料,既可以提供与量子光物理相关的根本重要的科学成果,又可以为未来的商业化技术提供强大的候选人。在本演示中,将介绍一系列方酸小分子供体的高强度材料表征结果,并对获得> 4%的光伏电池效率所需的制造和优化进行全面研究。将探讨方酸分子的分子结构与其形成纳米级聚集体的能力之间的关系。鱿鱼聚集体将被描述为本体异质结结构的独特光电探测器。然后将利用这种关系来解释影响器件整体性能的结晶度变化。最后,将对RIT捐助者材料研究的未来给出预测性总结。

著录项

  • 作者

    Spencer, Susan Demetra.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Engineering Materials Science.;Physics Quantum.;Chemistry Organic.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 238 p.
  • 总页数 238
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

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