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Effects of Intermediate Plasmonic Structures on the Performance of Ultra-Thin-Film Tandem Solar Cells

机译:中间等离子结构对超薄膜串联太阳能电池性能的影响

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Although solar cells can meet the increasing demand for energy of modern world, their usage is not as widespread as expected because of their high production cost and low efficiency. Thin-film and ultra-thin-film solar cells with single and multiple active layers are being investigated to reduce cost. Additionally, multiple active layers of different energy bandgaps are used in tandem in order to absorb the solar spectra more efficiently. However, the efficiency of ultra-thin-film tandem solar cells may suffer significantly mainly because of low photon absorption and current mismatch between active layers. In this work, we study the effects of intermediate plasmonic structures on the performance of ultra-thin-film tandem solar cells. We consider three structures-each with a top amorphous silicon layer and a bottom micro-crystalline silicon layer, and an intermediate plasmonic layer between them. The intermediate layer is either a metal layer with periodic holes or periodic metal strips or periodic metal nano-clusters. Using a finite difference time domain technique for incident AM 1.5 solar spectra, we show that these intermediate layers help to excite different plasmonic and photonic modes for different light polarizations, and thereby, increase the absorption of light significantly. We find that the short-circuit current density increases by ~12%, ~6%, and ~9% when the intermediate plasmonic structure is a metal hole-array, strips, and nano-clusters, respectively, from that of a structure that does not have the intermediate plasmonic layer.
机译:尽管太阳能电池可以满足现代世界对能源不断增长的需求,但是由于其高生产成本和低效率,其用途并未像预期的那样广泛。为了降低成本,正在研究具有单层和多层有源层的薄膜和超薄膜太阳能电池。另外,串联使用具有不同能带隙的多个有源层,以便更有效地吸收太阳光谱。但是,超薄膜串联太阳能电池的效率可能会受到重大影响,这主要是因为光子吸收率低以及有源层之间的电流不匹配。在这项工作中,我们研究了中间等离激元结构对超薄膜串联太阳能电池性能的影响。我们考虑三个结构,每个结构具有顶部非晶硅层和底部微晶硅层,以及它们之间的中间等离子体层。中间层是具有周期性孔的金属层或周期性金属条或周期性金属纳米簇。使用有限差分时域技术来入射AM 1.5太阳光谱,我们表明这些中间层有助于激发不同的等离激元和光子模式以实现不同的光偏振,从而显着增加光的吸收。我们发现,当中间等离激元结构分别是金属孔阵列,条状结构和纳米团簇时,短路电流密度分别比以下结构增加了〜12%,〜6%和〜9%。没有中间等离激元层。

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