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Arrays of Plasmonic Nanostructures for Absorption Enhancement in Perovskite Thin Films

机译:钙钛矿薄膜吸收增强等离子体纳米结构阵列

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摘要

We report optical characterization and theoretical simulation of plasmon enhanced methylammonium lead iodide (MAPbI ) thin-film perovskite solar cells. Specifically, various nanohole (NH) and nanodisk (ND) arrays are fabricated on gold/MAPbI interfaces. Significant absorption enhancement is observed experimentally in 75 nm and 110 nm-thick perovskite films. As a result of increased light scattering by plasmonic concentrators, the original Fabry–Pérot thin-film cavity effects are suppressed in specific structures. However, thanks to field enhancement caused by plasmonic resonances and in-plane interference of propagating surface plasmon polaritons, the calculated overall power conversion efficiency (PCE) of the solar cell is expected to increase by up to 45.5%, compared to its flat counterpart. The role of different geometry parameters of the nanostructure arrays is further investigated using three dimensional (3D) finite-difference time-domain (FDTD) simulations, which makes it possible to identify the physical origin of the absorption enhancement as a function of wavelength and design parameters. These findings demonstrate the potential of plasmonic nanostructures in further enhancing the performance of photovoltaic devices based on thin-film perovskites.
机译:我们报告了血浆增强甲基铅碘化物(MAPBI)薄膜Perovskite太阳能电池的光学表征和理论模拟。具体地,在Gold / MapBi界面上制造各种纳米孔(NH)和纳米型磁盘(ND)阵列。在75nm和110nm厚的钙钛矿薄膜中实验观察到显着吸收增强。由于等离子体浓缩器的光散射增加,在特定结构中抑制了原始的Fabry-Péroot薄膜腔效应。然而,由于由扁平对应物相比,由于由等离子体共振和传播表面等离子体极化膜的面内干扰引起的诸如传播表面等离子体极化膜的面内干扰引起的田间增强,因此相比,太阳能电池的总电力转换效率(PCE)增加了高达45.5%。使用三维(3D)有限差 - 时间域(FDTD)模拟进一步研究了纳米结构阵列的不同几何参数的作用,这使得可以识别吸收增强的物理来源作为波长和设计的函数参数。这些发现表明了等离子体纳米结构进一步提高了基于薄膜钙钛矿的光伏器件性能的潜力。

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