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Enhanced optical absorption of organic materials via surface plasmon resonance in gold nanoparticles

机译:通过表面等离子体共振在金纳米粒子中增强有机材料的光学吸收

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In this paper, we described an engineered enhancement of optical absorption in an organic photovoltaic cell via the excitation of surface plasmon resonance (SPR) in spherical Au nanoparticles deposited on a device surface. We deposited gold nanoparticles with 5 nm in diameter on ITO (indium tin oxide) glass substrates and then coated poly (styrenesulfonate) / poly (2,3-dihydro-thieno-1,4-dioxin) (PEDOT) which can reduce the work function of metal atoms and poly {2-methoxy-5-(2-ethylhexyloxy)-1, 4-phenylenevinylene} (MEHPPV) with Fullerene(C60) mixtures that work as p-type and n-type organic semiconductors, respectively. By using Mie theory simulation, we could predict SPR resonance peak of gold nanoparticles and we assume the enhancement in electromagnetic field absorption within a device results in increased photocurrent response in organic p-n junction diodes with gold nanoparticles. Compared with the same organic photovoltaic structures without gold nanoparticles, the proposed device shows about 40 % power efficiency improvement under halogen illumination. Experimental results agree well to the prediction of simulation, which showed SPR can be applied to enhance optical absorption of organic materials
机译:在本文中,我们通过在沉积在设备表面的球形金纳米粒子的表面等离子体共振(SPR)的激发描述的光学吸收的经工程改造的增强在有机光伏电池。我们沉积金纳米颗粒与5nm的直径上的ITO(氧化铟锡)的玻璃基板,然后涂覆聚(苯乙烯磺酸)/聚(2,3-二氢 - 噻吩并 - 二恶英)(PEDOT),其可以减少工作金属原子和聚函数{2-甲氧基-5-(2-乙基己氧基)-1,4-亚苯基亚乙烯基}(MEHPPV)与富勒烯(C60)的混合物的工作作为p型和n型有机半导体,分别。通过使用Mie理论模拟,我们可以预测的金纳米颗粒的SPR共振峰和我们假定在与金纳米颗粒的有机p-n结二极管的光电流增加响应的设备内的结果在电磁场的吸收的提高。与没有金纳米颗粒的相同有机光伏结构相比,所提出的装置在卤素照射下显示出约40%的功率效率改善。试验结果吻合很好地模拟的预测,这表明SPR可以应用到增强的有机材料的光学吸收

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