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Towards ultra-thin plasmonic silicon wafer solar cells with minimized efficiency loss

机译:迈向超薄等离子体硅片太阳能电池,效率损失最小化

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摘要

The cost-effectiveness of market-dominating silicon wafer solar cells plays a key role in determining the competiveness of solar energy with other exhaustible energy sources. Reducing the silicon wafer thickness at a minimized efficiency loss represents a mainstream trend in increasing the cost-effectiveness of wafer-based solar cells. In this paper we demonstrate that, using the advanced light trapping strategy with a properly designed nanoparticle architecture, the wafer thickness can be dramatically reduced to only around 1/10 of the current thickness (180 μm) without any solar cell efficiency loss at 18.2%. Nanoparticle integrated ultra-thin solar cells with only 3% of the current wafer thickness can potentially achieve 15.3% efficiency combining the absorption enhancement with the benefit of thinner wafer induced open circuit voltage increase. This represents a 97% material saving with only 15% relative efficiency loss. These results demonstrate the feasibility and prospect of achieving high-efficiency ultra-thin silicon wafer cells with plasmonic light trapping.
机译:市场主导的硅片太阳能电池的成本效益在决定太阳能与其他可利用能源的竞争力方面起着关键作用。以最小的效率损失来减小硅晶片厚度代表了增加基于晶片的太阳能电池的成本效益的主流趋势。在本文中,我们证明,使用具有适当设计的纳米粒子结构的先进的光捕获策略,可以将晶片厚度显着减小至当前厚度(180μm)的1/10左右,而太阳能电池效率不会降低18.2% 。纳米颗粒集成的超薄太阳能电池(仅占当前晶圆厚度的3%)可以潜在地实现15.3%的效率,同时兼顾吸收增强和更薄的晶圆感应开路电压增加的优势。这表示节省了97%的材料,而相对效率损失仅为15%。这些结果证明了通过等离子光捕获实现高效超薄硅晶片电池的可行性和前景。

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