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Enhanced Performance of PbS-quantum-dot-sensitized Solar Cells via Optimizing Precursor Solution and Electrolytes

机译:通过优化前体溶液和电解质来增强PbS量子点敏化太阳能电池的性能

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摘要

This work reports a PbS-quantum-dot-sensitized solar cell (QDSC) with power conversion efficiency (PCE) of 4%. PbS quantum dots (QDs) were grown on mesoporous TiO2 film using a successive ion layer absorption and reaction (SILAR) method. The growth of QDs was found to be profoundly affected by the concentration of the precursor solution. At low concentrations, the rate-limiting factor of the crystal growth was the adsorption of the precursor ions, and the surface growth of the crystal became the limiting factor in the high concentration solution. The optimal concentration of precursor solution with respect to the quantity and size of synthesized QDs was 0.06 M. To further increase the performance of QDSCs, the 30% deionized water of polysulfide electrolyte was replaced with methanol to improve the wettability and permeability of electrolytes in the TiO2 film, which accelerated the redox couple diffusion in the electrolyte solution and improved charge transfer at the interfaces between photoanodes and electrolytes. The stability of PbS QDs in the electrolyte was also improved by methanol to reduce the charge recombination and prolong the electron lifetime. As a result, the PCE of QDSC was increased to 4.01%.
机译:这项工作报告了功率转换效率(PCE)为4%的PbS量子点敏化太阳能电池(QDSC)。使用连续离子层吸收和反应(SILAR)方法在中孔TiO2薄膜上生长PbS量子点(QDs)。发现量子点的生长受到前体溶液浓度的深刻影响。在低浓度下,晶体生长的速率限制因素是前体离子的吸附,而晶体的表面生长成为高浓度溶液中的限制因素。相对于合成QD的数量和大小,前体溶液的最佳浓度为0.06μM。为了进一步提高QDSC的性能,用甲醇代替了30%的去离子水,以甲醇改善了电解质在水中的润湿性和渗透性。 TiO2薄膜可加速氧化还原对在电解质溶液中的扩散,并改善光阳极与电解质之间的界面处的电荷转移。甲醇中的PbS QDs的稳定性也可以通过甲醇改善,以减少电荷复合并延长电子寿命。结果,QDSC的PCE增加到4.01%。

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