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Singlet exciton fission, a multi-exciton generation process, in organic semiconductor solar cells

机译:单重激子裂变,一种多激子生成过程,在有机半导体太阳能电池中

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摘要

Organic semiconductor photovoltaics hold the promise of cheap production and low manufacturing setup costs. The highest efficiency seen in research labs, ~10% today, is still too low for production. In this work we explore implementations of a multiple exciton generation process, singlet exciton fission, to work around the Shockley-Queisser limit, according to which, all single junctions cells have a theoretical efficiency limit of 33.7%. This is the first implementation of a singlet fission photovoltaic. We measured a singlet fission efficiency of 72% at room temperature. We showed that singlet fission can be implemented in bulk heterojunction photovoltaics, which is an important result since some of the highest efficiency organic photovoltaics in the last 5 years have been bulk heterojunction structures. Secondly, we showed that the magnetic field effect can be used as a probe to investigate triplet dissociation in singlet fission devices. Thirdly, we implemented singlet fission photovoltaics, using the singlet fission material pentacene as donor and low bandgap infrared-absorptive lead chalcogenide quantum dots as acceptors. Singlet fission can enhance the efficiency of organic photovoltaics only if the fission material is paired with an absorptive low-energy-gap material. We find that pentacene triplet excitons dissociate at the pentacene/quantum dot heterojunctions with an internal quantum efficiency of 35%. Lastly, we investigate a series of materials to find a better acceptor in singlet fission photovoltaics using the methods and some results from the previous two investigations. We investigate device structures that pair pentacene and 6,13 diphenyl-pentacene as singlet fission donors with C60 , perylene diimides, PbS quantum dots and PbSe quantum dots as acceptors.
机译:有机半导体光伏具有廉价生产和低制造设置成本的希望。在研究实验室中看到的最高效率(今天约为10%)对于生产来说仍然太低了。在这项工作中,我们探索了多重激子生成过程(单重态激子裂变)的实现方式,以围绕Shockley-Queisser极限进行工作,根据该极限,所有单结单元的理论效率极限为33.7%。这是单线裂变光伏的第一个实现。我们在室温下测得的单峰裂变效率为72%。我们表明单线态裂变可以在体异质结光伏中实现,这是一个重要的结果,因为过去五年来一些效率最高的有机光伏已成为体异质结结构。其次,我们表明磁场效应可以用作研究单重态裂变装置中三重态解离的探针。第三,我们以单线态裂变材料并五苯为施主,低带隙红外吸收铅硫属化物量子点为受主,实现了单线裂变光伏。仅当裂变材料与吸收性低能隙材料配对时,单重态裂变才能提高有机光伏的效率。我们发现并五苯三重态激子在并五苯/量子点异质结处解离,内部量子效率为35%。最后,我们研究了一系列材料,以使用上述方法和前两次研究的结果在单线裂变光伏中找到更好的受体。我们研究了将单并裂变供体与并五苯和6,13二苯基并五苯与C60,per二酰亚胺,PbS量子点和PbSe量子点作为受体配对的装置结构。

著录项

  • 作者

    Jadhav Priyadarshani;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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