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首页> 外文期刊>Nanotechnology >Effect of photoanode surface coverage by a sensitizer on the photovoltaic performance of titania based CdS quantum dot sensitized solar cells
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Effect of photoanode surface coverage by a sensitizer on the photovoltaic performance of titania based CdS quantum dot sensitized solar cells

机译:敏化剂对光阳极表面的覆盖对基于二氧化钛的CdS量子点敏化太阳能电池光伏性能的影响

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摘要

In spite of the promising design and architecture, quantum dot sensitized solar cells (QDSSCs) have a long way to go before they attain the actual projected photoconversion efficiencies. Such an inferior performance displayed by QDSSCs is primarily because of many unwanted recombination losses of charge carriers at various interfaces of the cell. Electron recombination due to back electron transfer at the photoanode/electrolyte interface is an important one that needs to be addressed, to improve the efficiency of these third generation nanostructured solar cells. The present work highlights the importance of conformal coverage of CdS quantum dots (QDs) on the surface of the nanocrystalline titania photoanode in arresting such recombinations, leading to improvement in the performance of the cells. Using the successive ionic layer adsorption and reaction (SILAR) process, photoanodes are subjected to different amounts of CdS QD sensitization by varying the number of cycles of deposition. The sensitized electrodes are characterized using UV-visible spectroscopy, cyclic voltammetry and transmission electron microscopy to evaluate the extent of surface coverage of titania electrodes by QDs. Sandwich solar cells are then fabricated using these electrodes and characterized employing electrochemical impedance spectroscopy and J-V characteristics. It is observed that maximum solar cell efficiency is obtained for photoanodes with conformal coating of QDs and any further deposition of sensitizer leads to QD aggregation and so reduces the performance of the solar cells.
机译:尽管有前途的设计和架构,但量子点敏化太阳能电池(QDSSC)在达到实际预计的光转换效率之前还有很长的路要走。 QDSSC表现出的这种次等性能主要是由于在电池的各种界面处电荷载流子的许多不必要的重组损失。为了提高这些第三代纳米结构太阳能电池的效率,由于在光阳极/电解质界面处的反向电子转移而引起的电子复合是必须解决的重要问题。本工作强调了纳米晶二氧化钛光阳极表面CdS量子点(QDs)的保形覆盖在阻止此类重组方面的重要性,从而改善了细胞的性能。使用连续的离子层吸附和反应(SILAR)工艺,通过改变沉积循环数,使光阳极经历不同量的CdS QD敏化。使用紫外可见光谱,循环伏安法和透射电子显微镜对敏化电极进行表征,以评估量子点对二氧化钛电极的表面覆盖程度。然后,使用这些电极制造夹层太阳能电池,并利用电化学阻抗谱和J-V特性对其进行表征。观察到,对于具有QD保形涂层的光阳极而言,获得了最大的太阳能电池效率,并且任何进一步的敏化剂沉积都会导致QD聚集,因此降低了太阳能电池的性能。

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