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Plasmonic effect of different nanoarchitectures in the efficiency enhancement of polymer based solar cells: A review

机译:不同纳米结构的等离子效应在聚合物基太阳能电池效率提高中的作用:综述

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The cost-effectiveness, ease of fabrication on flexible substrates due to versatility in production methods, ability to tailor the molecular properties according to concerned application are some of the potential advantages offered by organic materials that attracts the attention of the researchers worldwide for their utilisation in Organic Solar Cells (OSCs). OSCs can combine the donor and acceptor materials to provide multiple benefits such as high absorption coefficient, non-toxicity, tuneable band gap and mechanical flexibility. However, due to the amorphous nature of these organic materials and short diffusion length of excitons, the thickness of the active layer of OSCs need to be kept small (similar to 100 nm) which reduces the number of photons absorbed. The incorporation of 2D and 3D nano-architectures such as nanoparticles, nanospheres, nanodots and nanostars in the active layer, buffer layer and electrodes in OSCs can significantly improve the absorption characteristics through nanoscale light trapping employing Surface Plasmon Resonance Effect and enhance mobility and conductivity by providing continuous charge transport pathways to the electrodes. This review emphasizes the improvements made in different steps in the working of OSCs by insertion of nanostructures and also explores the different challenges at architectural and plasmonic level limiting the PCE of these devices. It also highlights the recent progress and development of OSCs based on metal nanostructures in terms of photovoltaic parameters and the key research areas on which further improvement can be achieved for large scale commercialisation.
机译:有机材料具有的成本效益,由于生产方法的多功能性而在柔性基板上易于制造,根据相关应用定制分子特性的能力是有机材料提供的一些潜在优势,吸引了全世界研究人员的关注,它们被广泛用于这些领域。有机太阳能电池(OSC)。 OSC可以结合施主和受主材料来提供多种好处,例如高吸收系数,无毒,可调节的带隙和机械柔韧性。但是,由于这些有机材料的非晶性质和激子的短扩散长度,OSC有源层的厚度必须保持较小(类似于100 nm),这会减少吸收的光子数量。在OSC中将2D和3D纳米结构(例如纳米颗粒,纳米球,纳米点和纳米星)结合到活性层,缓冲层和电极中可以通过使用表面等离振子共振效应的纳米级光捕获来显着改善吸收特性,并通过提供到电极的连续电荷传输路径。这篇综述着重介绍了通过插入纳米结构在OSC工作的不同步骤中所取得的进步,并探讨了在架构和等离激元水平上限制这些设备PCE的不同挑战。它还强调了基于金属纳米结构的OSC在光伏参数方面的最新进展和发展,以及在大规模商业化方面可以实现进一步改进的关键研究领域。

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