Department of Electrical and Computer Engineering, University of Toronto , 10 King's College Road, Toronto, Ontario M5S 3G4, Canada.
Nano Lett. 2015 Feb 11;15(2):1101-8. doi: 10.1021/nl504086v. Epub 2015 Jan 9.
Extremely thin-absorber solar cells offer low materials utilization and simplified manufacture but require improved means to enhance photon absorption in the active layer. Here, we report enhanced-absorption colloidal quantum dot (CQD) solar cells that feature transfer-stamped solution-processed pyramid-shaped electrodes employed in a hierarchically structured device. The pyramids increase, by up to a factor of 2, the external quantum efficiency of the device at absorption-limited wavelengths near the absorber band edge. We show that absorption enhancement can be optimized with increased pyramid angle with an appreciable net improvement in power conversion efficiency, that is, with the gain in current associated with improved absorption and extraction overcoming the smaller fractional decrease in open-circuit voltage associated with increased junction area. We show that the hierarchical combination of micron-scale structured electrodes with nanoscale films provides for an optimized enhancement at absorption-limited wavelengths. We fabricate 54.7° pyramid-patterned electrodes, conformally apply the quantum dot films, and report pyramid CQD solar cells that exhibit a 24% improvement in overall short-circuit current density with champion devices providing a power conversion efficiency of 9.2%.
极薄吸收体太阳能电池的材料利用率低且制造工艺简化,但需要改进手段来增强活性层中的光吸收。在这里,我们报告了一种增强吸收的胶体量子点(CQD)太阳能电池,其特点是采用转移印花的溶液处理金字塔形电极,应用于分层结构的器件中。金字塔形结构将器件在吸收体带边缘附近的吸收限制波长处的外量子效率提高了高达 2 倍。我们表明,吸收增强可以通过增加金字塔角来优化,并且可以显著提高功率转换效率,也就是说,与开路电压相关的较小的分数下降相关联的电流增益与增加的结面积相关联,可以克服与改善吸收和提取相关联的电流。我们表明,微米级结构电极与纳米级薄膜的分层组合为吸收限制波长下的优化增强提供了条件。我们制造了 54.7°金字塔图案化电极,采用共形方法应用量子点薄膜,并报告了金字塔 CQD 太阳能电池,其整体短路电流密度提高了 24%,冠军器件提供了 9.2%的功率转换效率。