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Quantum Dot-Sensitized Solar Cells Based on Directly Adsorbed Zinc Copper Indium Sulfide Colloids

机译:基于直接吸附的锌铜铟锡胶体的量子点敏化太阳能电池

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摘要

Heavy metal-based quantum dots (QDs) have demonstrated to behave as efficient sensitizers in QD-sensitized solar cells (QDSSCs), as attested by the countless works and encouraging efficiencies reported so far. However, their intrinsic toxicity has arisen as a major issue for the prospects of commercialization. Here, we examine the potential of environmentally friendly zinc copper indium sulfide (ZCIS) QDs for the fabrication of liquid-junction QDSSCs by means of photoelectrochemical measurements. A straightforward approach to directly adsorb ZCIS QDs on TiO2 from a colloidal dispersion is presented. Incident photon-to-current efficiency (IPCE) spectra of sensitized photoanodes show a marked dependence on the adsorption time, with longer times leading to poorer performances. Cyclic voltammograms point to a blockage of the channels of the mesoporous TiO2 film by the agglomeration of QDs as the main reason for the decrease in efficiency. Photoanodes were also submitted to the ZnS treatment. Its effects on electron recombination with the electrolyte are analyzed through electrochemical impedance spectroscopy and photopotential measurements. The corresponding results bring out the role of the ZnS coating as a barrier layer preventing electron leakage toward the electrolyte, as argued in other QD-sensitized systems. The beneficial effect of the ZnS coating is ultimately reflected on the power conversion efficiency of complete devices, reaching values of 2 %. In a more general vein, through these findings, we aim to call the attention to the potentiality of this quaternary alloy, virtually unexplored as a light harvester for sensitized devices.
机译:重金属基量子点(QD)已被证明在QD敏化太阳能电池(QDSSC)中可作为有效的敏化剂,迄今为止已进行了无数研究并证明了令人鼓舞的效率。然而,它们的内在毒性已经成为商业化前景的主要问题。在这里,我们通过光电化学测量研究了环保锌铜铟铟(ZCIS)量子点在制造液体结QDSSC方面的潜力。提出了一种直接方法,可将ZCIS QD从胶体分散体直接吸附在TiO2上。敏化光阳极的入射光子-电流效率(IPCE)光谱显示出对吸附时间的显着依赖性,时间越长,性能越差。循环伏安图指出,由于QD的聚集,介孔TiO2膜的通道被堵塞,这是效率降低的主要原因。光阳极也接受了ZnS处理。通过电化学阻抗谱和光势测量分析了其对电子与电解质复合的影响。相应的结果证明了ZnS涂层作为防止电子向电解质泄漏的阻挡层的作用,正如其他QD敏化系统所主张的那样。 ZnS涂层的有益效果最终体现在完整器件的功率转换效率上,达到2%的值。总的来说,通过这些发现,我们旨在引起人们对这种四元合金的潜力的关注,这种四元合金实际上尚未被用作敏化器件的光收集器。

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