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Enhancement of light absorption in polyazomethines due to plasmon excitation on randomly distributed metal nanoparticles

机译:随机分布的金属纳米粒子上的等离子体激元激发,增强了聚偶氮甲胺的光吸收

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In photovoltaic devices, metal nanoparticles embedded in a semiconductor layer allow the enhancement of solar-to-electric energy conversion efficiency due to enhanced light absorption via a prolonged optical path, enhanced electric fields near the metallic inclusions, direct injection of hot electrons, or local heating. Here we pursue the first two avenues. In the first, light scattered at an angle beyond the critical angle for reflection is coupled into the semiconductor layer and confined within such planar waveguide up to possible exciton generation. In the second, light is trapped by the excitation of localized surface plasmons on metal nanoparticles leading to enhanced near-field plasmon-exciton coupling at the peak of the plasmon resonance. We report on results of a numerical experiment on light absorption in polymer-(fullerene derivative) blends, using the 3D FDTD method, where exact optical parameters of the materials involved are taken from our recent measurements. In simulations we investigate light absorption in randomly distributed metal nanoparticles dispersed in polyazomethine-(fullerene derivative) blends, which serve as active layers in bulk-heterojunction polymer solar cells. In the study Ag and Al nanoparticles of different diameters and fill factors are diffused in two air-stable aromatic polyazomethines with different chemical structures (abbreviated S9POF and S15POF) mixed with phenyl-C_(61)-butyric acid methyl ester (PCBM) or [6,6]-phenyl-C_(71)butyric acid methyl ester (PC_(71)BM). The mixtures are spin coated on a 100 nm thick Al layer deposited on a fused silica substrate. Optical constants of the active layers are taken from spectroscopic ellipsometry and reflectance measurements using a rotating analyzer type ellipsometer with auto-retarder performed in the wavelength range from 225 nm to 2200 nm. The permittivities of Ag and Al particles of diameters from 20 to 60 nm are assumed to be equal to those measured on 100 to 200 nm thick metal films.
机译:在光伏设备中,嵌入在半导体层中的金属纳米颗粒由于通过延长的光路增强了光吸收,在金属内含物附近增强了电场,直接注入了热电子或局部增强了太阳能到电能的转换效率加热。在这里,我们追求前两个途径。首先,以超过用于反射的临界角的角度散射的光被耦合到半导体层中,并被限制在这种平面波导中直至可能的激子产生。在第二种方法中,光被金属纳米颗粒上的局部表面等离激元激发而捕获,从而导致在等离激元共振峰处增强了近场等离激元-激子耦合。我们使用3D FDTD方法报告了聚合物-(富勒烯衍生物)共混物中光吸收的数值实验结果,其中涉及材料的精确光学参数是从我们最近的测量中得出的。在模拟中,我们研究了分散在聚偶氮甲碱-(富勒烯衍生物)共混物中的随机分布的金属纳米颗粒中的光吸收,该混合物用作本体-异质结聚合物太阳能电池中的活性层。在这项研究中,具有不同直径和填充因子的Ag和Al纳米粒子分散在两种化学结构不同的空气稳定的芳族聚偶氮甲亚胺(缩写为S9POF和S15POF)中,并与苯基C_(61)-丁酸甲酯(PCBM)或[ 6,6]-苯基-C_(71)丁酸甲酯(PC_(71)BM)。将混合物旋涂在沉积在熔融二氧化硅基底上的100 nm厚的Al层上。使用旋转分析仪型椭圆仪,在225nm至2200nm的波长范围内进行自动延迟,从椭圆偏振光谱仪和反射率测量中获得活性层的光学常数。假定直径为20至60 nm的Ag和Al粒子的介电常数等于在100至200 nm厚的金属膜上测得的介电常数。

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