柔性大面积有机光伏电池的印刷

Yuliang Zhang, R. Izquierdo, Shuyong Xiao
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引用次数: 1

摘要

虽然有机太阳能电池在实验室中已经实现了13%的功率转换效率,但有机太阳能电池的商业化仍面临许多重大挑战。这项工作旨在减少有机太阳能电池商业化道路上的技术障碍,并以应用工业兼容方法生产柔性大面积有机光伏电池为中心。研究了光活性油墨、绿色溶剂、空穴传输油墨和顶端银电极。分析和总结了高效有机光伏电池印刷的关键因素和规律。制造的柔性,大面积(~8 cm2)有机光伏电池的效率达到了~1%。进一步优化光活性层,改善电荷输运和电荷收集是抑制复合、增强光电流、提高整体光伏性能的关键因素。该研究成果可以很容易地转移到有机太阳能电池的工业生产中,也为有机太阳能电池的商业化提供了方向,推动了一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Printing of Flexible, Large-Area Organic Photovoltaic Cells
Although organic solar cells have achieved the power conversion efficiency of 13% in laboratory, the commercialization of organic solar cells is still encountering many big challenges. This work aims to reduce the technical barriers on the way to the commercialization of organic solar cells, and centers on applying industrial compatible methods to produce flexible, large-area organic photovoltaic cells. Photoactive ink, green solvent, hole transport ink, and top Ag electrodes have been investigated. The key factors and rules for printing of efficient organic photovoltaic cells are analyzed and summarized. The fabricated flexible, large-area (~8 cm2) organic photovoltaic cells achieved an efficiency of ~1%. Further optimization of photoactive layers and the improvement of charge transport and charge collection are key factors to depress the recombination, enhance photocurrent, and improve the overall photovoltaic performance. This work could be easily transferred to the industry production of organic solar cells, provide directions as well and push one step forward to the commercialization of organic solar cells.
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