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Carrier collection in optically resonant nanostructures for quantum dot solar cells

机译:用于量子点太阳能电池的光学谐振纳米结构中的载体收集

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One of the most interesting - but often underappreciated - absorber materials for solar cells are PbS quantum dot (QD) layers. In principle, the tuneable bandgap, that derives from quantum confinement, together with strong absorption, which allows for thin and flexible layers, as well as the ease of fabrication in form of solution deposition, are each strong arguments for thin-film-QD absorber layer based solar cells. However, so far, those advantages have been met with notable disadvantages which have hindered a faster and more enthusiastic uptake of QD absorber layers in the scientific community. A major hindrance is the low diffusion length of charge carriers in the absorber, limiting the maximum possible absorber thickness, thus requiring an unsatisfying compromise between short-circuit current density (J SC ) and open-circuit voltage (V OC ). In this work, we lay out a path on how to address this issue, by introducing a 3-dimensionally structured p-n heterojunction ( Fig. 1 ) that can increase charge carrier generation, as well as improve extraction in comparison to flat cell geometries.
机译:太阳能电池的最有趣但通常被低估的吸收材料是PBS量子点(QD)层。原则上,由量子限制的可调谐带隙和强烈的吸收,允许薄且柔性层,以及溶液沉积形式的制造的易于制造,是薄膜QD吸收器的强争论基于层的太阳能电池。然而,到目前为止,这些优势已经满足着显着的缺点,这阻碍了科学界中的QD吸收层的更快和更热烈吸收。主要障碍是吸收器中电荷载体的低扩散长度,限制了最大可能的吸收体厚度,从而需要在短路电流密度(J SC)和开路电压(V OC)之间不满意的损害。在这项工作中,我们通过引入可以增加电荷载流子产生的三维结构的P-N异质结(图1)来阐明如何解决这个问题的路径,以及与平坦的细胞几何形状相比,改善提取。

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