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Plasmonics for Improved Thin-Film Photovoltaic Cells and Enhanced Light Extraction from Organic Light-Emitting Diodes.

机译:等离子技术可改善薄膜光伏电池并增强有机发光二极管的光提取能力。

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摘要

Surface plasmon resonance of metal nanoparticles has attracted much attention by creating unique interactions between light and nanoparticles. This special phenomenon can be utilized in optoelectronics applications such as photovoltaics and light emitting diodes, to improve their efficiency. This thesis focuses on the influence of gold and silver nanoparticles on the photoconductivity of amorphous silicon, the efficacy of organic solar cells, and light extraction from organic light-emitting diodes.;Enhancement of photovoltaics by integrating cells with gold nanorods is of potential interest to reduce the usage of semiconductor material. Gold nanorods with the ability to control surface plasmon resonance were synthesized and their thermal stability was increased by silica-coating to enable them to withstand standard semiconductor processing. Silica-coated gold nanorods maintain rod-like shape to over 600 °C and they can increase the photoconductivity of thin film amorphous silicon by much more than a factor of 2 across the entire visible spectrum. The enhancement mechanism studies show that absorption enhancement due to strong near-field light concentration is the primary effect rather than pathlength increases due to light scattering.;Bulk heterojunction polymeric solar cells have an extremely thin active layer with thickness of 100 ~ 200 nm and can take advantage of plasmonic effects on absorption to improve their efficiencies. Gold nanorods were introduced into model solar cells consisting of poly(3-hexylthiophene) (P3HT) and [6,6]-phenyl C61 butyric acid methyl ester (PCBM). No obvious improvements in short circuit currents were observed when particles were embedded in the poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate) (PEDOT:PSS) anode layer. When blending silica-coated gold nanorods into the active layer, no significant improvements were obtained but the silica shell prevented metal nanorods from quenching excitons and trapping charge carriers so that future improvements using this materials design may yet be possible.;The external quantum efficiency of organic light-emitting diodes (OLEDs) is limited to ~ 20 % because of the refractive index mismatch between multiple layers in the devices. Large silver nanoparticles were synthesized and exhibited strong light scattering through the visible spectrum. These were incorporated into a layer between the indium tin oxide (ITO) anode and the glass substrate to improve light extraction from OLEDs. SiO2, TiO2 and mixed sol-gel films were developed to planarize silver nanoparticles. In spite of our hypothesis that strong scattering by large silver particles could be used to improve light extraction from OLEDs, our best results were to observe ~ 15 % decreases in light output even when the refractive index of the planarization layer was well matched to that of the ITO anode.
机译:金属纳米粒子的表面等离振子共振通过在光和纳米粒子之间产生独特的相互作用而引起了广泛的关注。这种特殊现象可用于光电应用中,例如光伏电池和发光二极管,以提高其效率。本文主要研究金和银纳米颗粒对非晶硅的光电导性,有机太阳能电池的功效以及从有机发光二极管中提取光的影响。减少半导体材料的使用。合成了具有控制表面等离子体共振能力的金纳米棒,并通过二氧化硅涂层提高了其热稳定性,使其能够承受标准的半导体工艺。涂有二氧化硅的金纳米棒在超过600°C的温度下仍保持棒状形状,并且可以在整个可见光谱范围内将薄膜非晶硅的光电导性提高2倍以上。增强机理研究表明,强近场光聚集引起的吸收增强是主要作用,而不是光散射引起的光程增加。本体异质结聚合物太阳能电池的活性层非常薄,厚度为100〜200 nm,可以利用等离子体吸收效应,以提高其效率。金纳米棒被引入由聚(3-己基噻吩)(P3HT)和[6,6]-苯基C61丁酸甲酯(PCBM)组成的模型太阳能电池中。当将粒子嵌入聚(3,4-乙撑二氧噻吩)-聚(苯乙烯磺酸盐)(PEDOT:PSS)阳极层中时,未观察到短路电流的明显改善。当将二氧化硅涂层的金纳米棒掺入活性层时,没有获得明显的改善,但是二氧化硅壳阻止了金属纳米棒淬灭激子和俘获电荷载流子,因此使用这种材料设计的未来改进可能仍然是可能的。有机发光二极管(OLED)由于器件中多层之间的折射率不匹配而被限制为〜20%。合成了大的银纳米颗粒,并在可见光谱中表现出强光散射。将它们并入铟锡氧化物(ITO)阳极和玻璃基板之间的层中,以改善从OLED的光提取。开发了SiO2,TiO2和混合溶胶-凝胶膜以平面化银纳米颗粒。尽管我们的假设是可以使用大银颗粒的强散射来改善从OLED的光提取,但我们最好的结果是观察到即使平坦化层的折射率与光学层的折射率完全匹配,光输出也会降低约15%。 ITO阳极。

著录项

  • 作者

    Chang, Chi-Sheng.;

  • 作者单位

    University of Rochester.;

  • 授予单位 University of Rochester.;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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