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All-solution-processed PbS quantum dot solar modules

机译:All-solution-processed PbS量子点太阳能模块

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摘要

A rapid increase in power conversion efficiencies in colloidal quantum dot (QD) solar cells has been achieved recently with lead sulphide (PbS) QDs by adapting a heterojunction architecture, which consists of small-area devices associated with a vacuum-deposited buffer layer with metal electrodes. The preparation of QD solar modules by low-cost solution processes is required to further increase the power-to-cost ratio. Herein we demonstrate all-solution-processed flexible PbS QD solar modules with a layer-by-layer architecture comprising polyethylene terephthalate (PET) substrate/indium tin oxide (ITO)/titanium oxide (TiO2)/PbS QD/poly(3-hexylthiophene) (P3HT)/poly(3,4-ethylenedioxythiophene) : poly(styrene sulfonate) (PEDOT : PSS)/Ag, with an active area of up to 30 cm(2), exhibiting a power conversion efficiency (PCE) of 1.3% under AM 1.5 conditions (PCE of 2.2% for a 1 cm(2) unit cell). Our approach affords trade-offs between power and the active area of the photovoltaic devices, which results in a low-cost power source, and which is scalable to larger areas.
机译:快速提高能量转化效率在胶体量子点(QD)太阳能电池最近取得了与硫化铅(PbS)量子点通过调节异质结体系结构,由小面积相关设备用真空沉积缓冲层与金属电极。由低成本的解决方案流程是必需的进一步提高power-to-cost比例。我们将演示all-solution-processed灵活PbS QD与一层太阳能电池组件体系结构包括聚乙烯对苯二甲酸乙二醇酯(PET)衬底/氧化铟锡(ITO) /氧化钛(二氧化钛)/ PbS(P3HT) /聚(材料间是的运动):聚(苯乙烯磺酸盐)(PEDOT: PSS) / Ag)一个有效面积达30厘米(2),展示力量下1.3%的转换效率(PCE)是1.5条件(PCE的2.2% 1厘米(2)单元细胞)。我们的方法提供电力和之间的取舍光伏设备的有效面积,结果在一个低成本的电源,这是可扩展到更大的区域。

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