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Solar absorbance enhancement in perovskite solar cells with the inclusion of copper nanoparticles: an architectural study

机译:钙钛矿太阳能电池在包含铜纳米粒子的太阳能吸光度增强:建筑研究

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摘要

In this paper we have studied the geometrical and material aspects of plasmonic nanoparticles embedded within organic-inorganic halide Perovskite solar cells (PSCs), to achieve higher solar absorbance enhancement. The material choice of the nanoparticle employed within the film is proportional to the enhancement factor the cell. Interestingly, we observe that copper nanoparticles produce similar absorbance like other conventional metals such as gold and silver. With the existing PSCs designs, high production costs serve as a paramount threat to its commercialization. The utilisation of copper could significantly lower this cost without compromising the solar absorbance of the cell. The size and location of the particle within the 200 nm thick perovskite film are also critically analysed to improve the solar absorbance of the designed solar cell. Results portray that the maximum enhancement can be attained with the inclusion of spherical nanoparticles of 70 nm radii, placed at the center of the film. This work also highlights the impact of different morphologies of plasmonic nanoparticles including sphere, cuboid and ellipsoid integrated with the cell. It is further extended to different geometrical orientations of nanoellipsoids naming oblate and prolate. To avoid a red shift in the resonance wavelength occurring due to plasmonic coupling, the dimer formation of these particles is also taken into account. We mark 30 nm as a safe plasmonic distance for two spherical nanoparticles of radii 30 nm embedded within the film to avoid this effect. The entire study has been conducted using finite difference time domain (FDTD) method of simulation.
机译:本文研究了嵌入有机 - 无机卤化物钙钛矿太阳能电池(PSC)内的等离子体纳米粒子的几何和材料方面,以实现更高的太阳能吸光度增强。在膜内使用的纳米颗粒的材料选择与细胞的增强因子成比例。有趣的是,观察到铜纳米粒子产生类似的吸光度,如其他常规金属,如金和银。通过现有的PSC设计,高生产成本作为对其商业化的最重要的威胁。铜的利用可以显着降低这种成本,而不会影响细胞的太阳能吸光度。在200nm厚的钙钛矿膜内的粒子的尺寸和位置也在重视上分析以改善设计的太阳能电池的太阳能吸光度。结果描绘了最大增强可以用包含70nm半径的球形纳米颗粒,放置在薄膜的中心。这项工作还突出了不同形态的等离子体纳米颗粒的影响,包括球体,长方体和椭球与细胞集成的。它进一步延伸到纳米珠粒的不同几何取向命名扁平和聚合物。为了避免由于等离子体耦合而发生的共振波长的红色移位,也考虑这些颗粒的二聚体形成。我们将30nm标记为嵌入在薄膜内的两个球形纳米颗粒的安全等离子体距离,以避免这种效果。通过有限差分时域(FDTD)模拟方法进行了整个研究。

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