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Light trapping and absorption enhancement for high performance solar cells and infrared photodetectors.

机译:用于高性能太阳能电池和红外光电探测器的光捕获和吸收增强。

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摘要

This dissertation presents the work on light trapping and absorption enhancement in solar cells and infrared photodetectors. Hemispherical microstructure based omni-directional anti reflection (Omni-AR) coating has been designed and developed for solar cells, based on rigorous coupled-wave analysis (RCWA) and convective coating process. Omni-AR coating enhances light absorption in solar cells, due to the reduced reflection on the structured solar cell surfaces, and the increased optical path length (OPL) inside the solar cells. Omni-AR coating has been demonstrated as a cost-effective light trapping approach for different material systems, with very low reflection and high transmission over a large range of incident angles (0° to 60°) and over a wide spectral range (400-1000nm). Omni-AR coating has also been applied on commercial solar cells based on the cost-effective solution techniques. With omni-AR coating, we obtained increased short circuit current, and increased conversion efficiency, in both organic solar cells and amorphous silicon solar cells.;Significant infrared absorption enhancement can also be achieved in photonic crystals (PC) cavities. In 1D PC structures, the ratio of absorption enhancement to suppression at the photonic bandedge can be as high as 40. The absolute infrared absorption can be tuned and enhanced by more than 90% in both the defect cavity and the resonance cavity 1D PC structures. In 2D photonic crystals slab (PCS) cavities, the absorption enhancement factor is more than 6000 under lateral light stimulation. With vertical light stimulation, the enhancement factor is about 100. Enhanced infrared absorption can also be obtained through Fano resonance based PC structures. The light is effectively coupled between the in-plane discrete resonance modes and the vertical continuum radiation modes. Based on this principle, 2D PC patterned silicon nanomembrane (SiNM) Fano filters are fabricated and transferred onto transparent substrates. This type of ultra compact SiNM Fano filters demonstrates strong angular and polarization dependent transmission properties. More significantly, enhanced absorption is achieved via the incorporation of the spectrally aligned colloidal quantum dots (CQDs) into the air holes of Fano filters. Finally, we propose two kinds of spectrally-selective photodetector structures, based on Fano resonance filters.
机译:本文提出了太阳能电池和红外光探测器中光捕获和吸收增强的工作。基于严格的耦合波分析(RCWA)和对流镀膜工艺,已经为太阳能电池设计和开发了基于半球形微结构的全向抗反射(Omni-AR)镀膜。 Omni-AR涂层增强了太阳能电池中的光吸收,这是因为结构化太阳能电池表面上的反射减少了,并且太阳能电池内部的光程长度(OPL)增加了。 Omni-AR涂层已被证明是一种适用于不同材料系统的经济有效的光捕获方法,在大入射角范围(0°至60°)和宽光谱范围内(400- 1000nm)。基于成本效益的解决方案技术,Omni-AR涂层也已应用于商用太阳能电池。借助全能AR涂层,我们在有机太阳能电池和非晶硅太阳能电池中均获得了提高的短路电流和更高的转换效率。;在光子晶体(PC)腔体中也可以实现显着的红外吸收增强。在1D PC结构中,在光子带边缘吸收增强与抑制的比率可以高达40。在缺陷腔和谐振腔1D PC结构中,绝对红外吸收都可以调整和增强90%以上。在二维光子晶体平板(PCS)腔中,在侧向光刺激下吸收增强因子大于6000。在垂直光刺激下,增强因子约为100。还可以通过基于Fano共振的PC结构获得增强的红外吸收。光有效地耦合在面内离散共振模式和垂直连续辐射模式之间。基于此原理,制造了2D PC图案化的硅纳米膜(SiNM)Fano滤光片,并将其转移到透明基板上。这种超紧凑型SiNM Fano滤波器具有很强的角度和偏振相关传输特性。更重要的是,通过将光谱对准的胶体量子点(CQD)合并到Fano滤镜的气孔中,可以提高吸收率。最后,我们提出了两种基于Fano共振滤波器的光谱选择性光电探测器结构。

著录项

  • 作者

    Chen, Li.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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