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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Plasmonic effect in pn-junction solar cells based on layers of semiconductor nanocrystals: Where to introduce metal nanoparticles?
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Plasmonic effect in pn-junction solar cells based on layers of semiconductor nanocrystals: Where to introduce metal nanoparticles?

机译:基于半导体纳米晶体层的pn结太阳能电池的等离子效应:在何处引入金属纳米颗粒?

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摘要

We have introduced metal nanoparticles in pn-junction solar cells to study plasmonic effect in such devices. Here, the junction was based on a layer of copper-zinc-tin-sulfide (CZTS) nanocrystals as a p-type semiconductor and another layer of copper-diffused silver indium disulfide (Cu@AgInS2) nanocrystals as an n-type material in sequence. We introduced silver nanoparticles at different locations of pn- and also of np-junctions: (i) in the p-layer, (ii) in the n-layer, (iii) in both the layers, and (iv) at the interface between the layers of p- and n-type nanocrystals. The results in both pn- and np-junctions show that the devices with metal nanoparticles in p-type layer evidenced a substantial increase in energy conversion efficiency of solar cells as compared to other devices and the control device without any silver nanoparticles. We have inferred that the presence of silver nanoparticles in the depletion layer might have narrowed down the width of the region; metal nanoparticles in the n-layer acted as electrontraps to localize them hindering electron-transport and thereby reducing the efficiency of such plasmonic solar cells. Our results have shown that while introducing metal nanoparticles in solar cells, they should be placed only in the p-layer so that transport of electrons in plasmonic solar cells remains unaffected. (C) 2015 Elsevier B.V. All rights reserved.
机译:我们已经在pn结太阳能电池中引入了金属纳米颗粒,以研究此类器件中的等离子体效应。在这里,结是基于一层铜-锌-锡-硫化物(CZTS)纳米晶体作为p型半导体,以及另一层铜扩散的银铟二硫化物(Cu @ AgInS2)纳米晶体作为n型材料。顺序。我们在pn结和np结的不同位置引入了银纳米颗粒:(i)在p层中,(ii)在n层中,(iii)在两层中,以及(iv)在界面处在p型和n型纳米晶体的层之间。 pn和np结的结果表明,与其他没有任何银纳米颗粒的器件和控制器件相比,在p型层中具有金属纳米颗粒的器件证明了太阳能电池的能量转换效率大大提高。我们已经推断出,耗尽层中银纳米颗粒的存在可能会缩小区域的宽度。 n层中的金属纳米粒子充当电子陷阱,将其局部化,从而阻碍电子传输,从而降低了此类等离子体太阳能电池的效率。我们的结果表明,在将金属纳米颗粒引入太阳能电池时,应仅将它们放置在p层中,以使电子在等离子体太阳能电池中的传输不会受到影响。 (C)2015 Elsevier B.V.保留所有权利。

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