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首页> 外文期刊>Advanced Functional Materials >Efficiency Enhancement of Organic Solar Cells by Using Shape-Dependent Broadband Plasmonic Absorption in Metallic Nanoparticles
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Efficiency Enhancement of Organic Solar Cells by Using Shape-Dependent Broadband Plasmonic Absorption in Metallic Nanoparticles

机译:通过在金属纳米粒子中使用形状依赖的宽带等离子体吸收提高有机太阳能电池的效率

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摘要

It is been widely reported that plasmonic effects in metallic nanomaterials can enhance light trapping in organix solar cells (OSCs). However, typical nanoparticles (NP) of high quality (i.e., mono-dispersive) only possess a single resonant absorption peak, which inevitably limits the power conversion efficiency (PCE) enhancement to a narrow spectral range. Broadband plasmonic absorption is obviously highly desirable. In this paper, a combination of Ag nanomaterials of different shapes, including nanoparticles and nanoprisms, is proposed for this purpose.The nanomaterials are synthesized using a simple wet chemical method. Theoretical and experimental studies show that the origin of the observed PCE enhancement is the simultaneous excitation of many plasmonic low- and high-order resonances modes, which are material-, shape-, size-, and polarization-dependent. Particularly for the Ag nanoprisms studied here, the high-order resonances result in higher contribution than low-order resonances to the absorption enhancement of OSCs through an improved overlap with the active material absorption spectrum. With the incorporation of the mixed nanomaterials into the active layer, a wide-band absorption improvement is demonstrated and the short-circuit photocurrent density (J_(sc)) improves by 17.91%. Finally, PCE is enhanced by 19.44% as compared to pre-optimized control OSCs. These results suggest a new approach to achieve higher overall enhancement through improving broadband absorption.
机译:广泛报道金属纳米材料中的等离激元效应可以增强organix太阳能电池(OSC)中的光捕获。然而,典型的高质量(即单分散的)纳米颗粒(NP)仅具有单个共振吸收峰,这不可避免地将功率转换效率(PCE)增强限制在狭窄的光谱范围内。宽带等离子体吸收显然是非常需要的。为此,本文提出了多种形状的Ag纳米材料的组合,包括纳米颗粒和纳米棱镜。采用简单的湿化学方法合成了纳米材料。理论和实验研究表明,观察到的PCE增强的起源是同时激发许多等离激元低阶和高阶共振模式,这些模式取决于材料,形状,尺寸和极化。特别是对于此处研究的Ag纳米棱镜,高阶共振通过改善与活性物质吸收光谱的重叠,对OSC的吸收增强产生了比低阶共振更高的贡献。通过将混合的纳米材料掺入活性层中,证明了宽带吸收的改善,并且短路光电流密度(J_(sc))提高了17.91%。最后,与预优化的控制OSC相比,PCE增强了19.44%。这些结果表明通过改善宽带吸收来实现更高总体增强的新方法。

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  • 来源
    《Advanced Functional Materials 》 |2013年第21期| 2728-2735| 共8页
  • 作者单位

    Department of Electrical and Electronic Engineering the University of Hong Kong Pokfulam Road, Hong Kong, P. R. China;

    Department of Electrical and Electronic Engineering the University of Hong Kong Pokfulam Road, Hong Kong, P. R. China;

    Department of Electronic Engineering Center for Advanced Research in Photonics the Chinese University of Hong Kong Shatin, NT, Hong Kong SAR, 852, P. R. China;

    Department of Electrical and Electronic Engineering the University of Hong Kong Pokfulam Road, Hong Kong, P. R. China;

    Department of Electronic Engineering Center for Advanced Research in Photonics the Chinese University of Hong Kong Shatin, NT, Hong Kong SAR, 852, P. R. China;

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