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Broadband Finite-Difference Time-Domain Modeling of Plasmonic Organic Photovoltaics

机译:等离子体有机光伏宽带有限差分时域建模

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We develop accurate finite-difference time-domain (FDTD) modeling of polymer bulk heterojunction solar cells containing Ag nanoparticles between the hole-transporting layer and the transparent conducting oxide-coated glass substrate in the wavelength range of 300 nm to 800 nm. The Drude dispersion modeling technique is used to model the frequency dispersion behavior of Ag nanoparticles, the hole-transporting layer, and indium tin oxide. The perfectly matched layer boundary condition is used for the top and bottom regions of the computational domain, and the periodic boundary condition is used for the lateral regions of the same domain. The developed FDTD modeling is employed to investigate the effect of geometrical parameters of Ag nanospheres on electromagnetic fields in devices. Although negative plasmonic effects are observed in the considered device, absorption enhancement can be achieved when favorable geometrical parameters are obtained.
机译:我们开发了在300nm至800nm波长范围内的空穴传输层与透明导电氧化物涂层玻璃基板之间包含Ag纳米粒子的聚合物本体异质结太阳能电池的精确时差时域(FDTD)建模。 Drude色散建模技术用于对Ag纳米颗粒,空穴传输层和铟锡氧化物的频率色散行为进行建模。完全匹配的层边界条件用于计算域的顶部和底部区域,周期性边界条件用于相同域的横向区域。所开发的FDTD建模用于研究Ag纳米球的几何参数对器件中电磁场的影响。尽管在所考虑的设备中观察到了负等离子效应,但是当获得有利的几何参数时,可以实现吸收增强。

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