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Enhanced conversion efficiency in Si solar cells employing photoluminescent down-shifting CdSe/CdS core/shell quantum dots

机译:使用光致发光下移CdSe / CdS核/壳量子点的Si太阳能电池的转换效率提高

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摘要

Silicon solar cells have captured a large portion of the total market of photovoltaic devices mostly due to their relatively high efficiency. However, Silicon exhibits limitations in ultraviolet absorption because high-energy photons are absorbed at the surface of the solar cell, in the heavily doped region, and the photo-generated electron-hole pairs need to diffuse into the junction region, resulting in significant carrier recombination. One of the alternatives to improve the absorption range involves the use of down-shifting nano-structures able to interact with the aforementioned high energy photons. Here, as a proof of concept, we use downshifting CdSe/CdS quantum dots to improve the performance of a silicon solar cell. The incorporation of these nanostructures triggered improvements in the short circuit current density (Jsc, from 32.5 to 37.0 mA/cm2). This improvement led to a ∼13% increase in the power conversion efficiency (PCE), from 12.0 to 13.5%. Our results demonstrate that the application of down-shifting materials is a viable strategy to improve the efficiency of Silicon solar cells with mass-compatible techniques that could serve to promote their widespread utilization.
机译:硅太阳能电池由于其相对较高的效率而已占据了光伏设备整个市场的很大一部分。但是,硅在紫外线吸收方面表现出局限性,因为高能光子在重掺杂区被太阳能电池的表面吸收,并且光生电子-空穴对需要扩散到结区,从而产生大量载流子重组。改善吸收范围的替代方案之一涉及使用能够与前述高能光子相互作用的降档纳米结构。在这里,作为概念验证,我们使用降档CdSe / CdS量子点来提高硅太阳能电池的性能。这些纳米结构的引入引发了短路电流密度的改善(Jsc,从32.5到37.0 / mA / cm 2 )。这种改进导致功率转换效率(PCE)大约增加了13%,从12.0提高到了13.5%。我们的结果表明,降档材料的应用是一种可行的策略,可以通过质量兼容的技术提高硅太阳能电池的效率,从而促进其广泛使用。

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