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Synergy effect of intraband transition and impact-Auger in optical hot-carrier solar cells

机译:带内跃迁和冲击螺旋钻在光学热载太阳能电池中的协同效应

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摘要

An optical hot-carrier solar cell (opt-HC-SC) is a variant of hot-carrier solar cells (HC-SCs). Hot luminescence in a specific narrow energy range is enhanced and extracted from the absorber through an optical energy-selective contact (opt-ESC) and illuminates a neighboring photovoltaic cell of a conventional type. Thus, this concept eliminates the requisites for carrier transport to achieve high conversion efficiency. In the present study, I clarified the issues for high efficiency using an improved detailed-balance model and determined the solutions. The serious issue is that the enhancement effect of the opt-ESC on the hot luminescence is considerably lower in practice than the optimal value, and this necessitates a high carrier density in the absorber for sufficient photon extraction and results in significant energy loss originating from carrier thermalization. When impact ionization occurs immediately, the average carrier energy lowers, the carrier density can decrease, and hence the thermalization energy loss significantly reduces. This, in turn, enables absorption of sub-bandgap photons arising from the intraband transition to improve the efficiency. Consequently, the synergy effect of both the aforementioned phenomena notably improves the efficiency to 53.6% under the practical upper limit of the enhancement effect, the carrier thermalization time of 1 ns, and 1000-times concentrated solar illumination, from 45.1% for no intraband transition or impact-Auger. By contrast, the individual effects are marginal. This is a unique feature of opt-HC-SCs and is not found in HC-SCs (carrier extraction). The present finding serves as a guide to material design to realize highly efficient opt-HC-SCs. Published under license by AIP Publishing.
机译:光学热载太阳能电池(opt-HC-SC)是热载太阳能电池(HC-SC)的一种变体。在特定的狭窄能量范围内的热发光得到增强,并通过光能选择触点(opt-ESC)从吸收器中提取出来,并照亮了传统类型的相邻光伏电池。因此,该概念消除了为实现高转换效率而进行的载流子运输的必要条件。在本研究中,我使用改进的详细平衡模型澄清了高效问题,并确定了解决方案。严重的问题是,实践中opt-ESC对热发光的增强作用远低于最佳值,这需要吸收器中的载流子密度高才能充分提取光子,并导致大量的能量损失源自载流子热化。当立即发生碰撞电离时,平均载流子能量会降低,载流子密度会降低,因此热能损失会大大减少。继而,这使得能够吸收由带内跃迁引起的子带隙光子,以提高效率。因此,在增强效果的实际上限,1 ns的载流子热化时间和1000倍的集中太阳光照下,上述两种现象的协同效应将效率从53.6%显着提高到了53.6%,无带内过渡或影响螺旋钻。相比之下,个体效应是微不足道的。这是opt-HC-SC的独特功能,在HC-SC(载波提取)中找不到。本发现可为实现高效opt-HC-SC的材料设计提供指导。由AIP Publishing授权发布。

著录项

  • 来源
    《Journal of Applied Physics 》 |2019年第7期| 074501.1-074501.13| 共13页
  • 作者

    Takeda Yasuhiko;

  • 作者单位

    Toyota Cent Res & Dev Labs Inc 41-1 Yokomichi Nagakute Aichi 4801192 Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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