Wang Wenyan, Hao Yuying, Cui Yanxia, Tian Ximin, Zhang Ye, Wang Hua, Shi Fang, Wei Bin, Huang Wei
Opt Express. 2014 Mar 10;22 Suppl 2:A376-85. doi: 10.1364/OE.22.00A376.
Metal nanogratings as one of the promising architectures for effective light trapping in organic photovoltaics (OPVs) have been actively studied over the past decade. Here we designed a novel metal nanowall grating with ultra-small period and ultra-high aspect-ratio as the back electrode of the OPV device. Such grating results in the strong hot spot effect in-between the neighboring nanowalls and the localized surface plasmon effect at the corners of nanowalls. These combined effects make the integrated absorption efficiency of light over the wavelength range from 400 to 650 nm in the active layer for the proposed structure, with respect to the equivalent planar structure, increases by 102% at TM polarization and by 36.5% at the TM/TE hybrid polarization, respectively. Moreover, it is noted that the hot spot effect in the proposed structure is more effective for ultra-thin active layers, which is very favorable for the exciton dissociation and charge collection. Therefore such a nanowall grating is expected to improve the overall performance of OPV devices.
在过去十年中,金属纳米光栅作为有机光伏(OPV)中有效光捕获的有前景的结构之一,受到了广泛研究。在此,我们设计了一种具有超小周期和超高纵横比的新型金属纳米壁光栅,作为OPV器件的背电极。这种光栅在相邻纳米壁之间产生强烈的热点效应,并在纳米壁的角落处产生局部表面等离子体效应。这些综合效应使得所提出结构的有源层在400至650nm波长范围内的光的积分吸收效率,相对于等效平面结构,在TM偏振下提高了102%,在TM/TE混合偏振下提高了36.5%。此外,值得注意的是,所提出结构中的热点效应对于超薄有源层更有效,这对激子解离和电荷收集非常有利。因此,这种纳米壁光栅有望提高OPV器件的整体性能。