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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Enhanced performance of PbS-sensitized solar cells via controlled successive ionic-layer adsorption and reaction
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Enhanced performance of PbS-sensitized solar cells via controlled successive ionic-layer adsorption and reaction

机译:通过控制连续的离子层吸附和反应来增强PbS敏化太阳能电池的性能

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摘要

Despite the potential of PbS quantum dots (QDs) as sensitizers for quantum-dot-sensitized solar cells (QDSSCs), achieving a high photocurrent density over 30 mA cm(-2) remains a challenging task in PbS-sensitized solar cells. In contrast to previous attempts, where Hg2+ -doping or multi-step post-treatment is necessary, we are capable of achieving a high photocurrent exceeding 30 mA cm(-2) simply by manipulating the successive ionic layer adsorption and reaction (SILAR) method. We show that controlling temperature at which SILAR is performed is critical to obtain a higher and more uniform coverage of PbS QDs over a mesoporous TiO2 film. The deposition of a CdS inter-layer between TiO2 and PbS is found to be an effective means of ensuring high photocurrent and stability. Not only does this modification improve the light absorption capability of the photoanode, but it also has a significant effect on charge recombination and electron injection efficiency at the PbS/TiO2 interface according to our in-depth study using electrochemical impedance spectroscopy (EIS). The implication of subtle changes in the interfacial events via modified SILAR conditions for PbS-sensitized solar cells is discussed.
机译:尽管PbS量子点(QDs)作为量子点敏化太阳能电池(QDSSCs)的敏化剂具有潜力,但在PbS敏化太阳能电池中实现超过30 mA cm(-2)的高光电流密度仍然是一项艰巨的任务。与之前的尝试(需要进行Hg2 +掺杂或多步后处理)相反,我们只需操作连续的离子层吸附和反应(SILAR)方法,便能够获得超过30 mA cm(-2)的高光电流。 。我们表明控制执行SILAR的温度对于在介孔TiO2薄膜上获得更高且更均匀的PbS QD覆盖至关重要。发现在TiO2和PbS之间沉积CdS中间层是确保高光电流和稳定性的有效手段。根据我们使用电化学阻抗谱(EIS)进行的深入研究,这种修饰不仅改善了光电阳极的光吸收能力,而且还对PbS / TiO2界面上的电荷复合和电子注入效率产生了显着影响。讨论了通过修改的SILAR条件对PbS致敏太阳能电池的界面事件的细微变化。

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