吉林大学学报(信息科学版) ›› 2021, Vol. 39 ›› Issue (5): 518-524.

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基于碱金属氯化物的钙钛矿太阳能电池界面钝化

李德辉, 王宝旭, 张景林   

  1. 吉林大学 电子科学与工程学院, 长春 130012
  • 收稿日期:2020-10-05 出版日期:2021-10-01 发布日期:2021-10-01
  • 作者简介:李德辉(1970— ), 男, 长春人, 吉林大学工程师, 博士, 主要从事光电子信息应用技术及相关设备开发等研究, (Tel)86-13069247528(E-mail)lidh@jlu.edu.cn。
  • 基金资助:
    国家自然科学基金资助项目(62175084; 62005093)

Interface Passivation of Perovskite Solar Cells Based on Alkali Metal Chloride

LI Dehui, WANG Baoxu, ZHANG Jinglin   

  1. College of Electrical Science and Engineering, Jilin University, Changchun 130012, China
  • Received:2020-10-05 Online:2021-10-01 Published:2021-10-01

摘要: 针对钙钛矿太阳能电池的电子传输层/ 钙钛矿层界面处存在的大量缺陷, 提出了一种无机盐界面钝化的 优化策略。 该策略选用低成本的氯化锂(LiCl: Lithium Chloride)作为电子传输层/ 钙钛矿层的界面钝化材料, 制备了器件结构为 ITO/ TiO2 / LiCl / CH3NH3PbI3 / spiro-OMeTAD/ Ag 的钙钛矿太阳能电池。 在引入浓度经过优化 的 LiCl 后, 钙钛矿太阳能电池的短路电流密度和填充因子达到 21. 05 mA/ cm 2 和 72. 55% , 能量转换效率为 16.95% , 与没有引入 LiCl 的器件相比提高了 23. 00% 。 对器件和薄膜进行表征后发现, LiCl 可以钝化界面处 的缺陷和陷阱, 并提高了 TiO2 的电导率, 从而减少了界面复合损失, 促进了电荷传输。

关键词: 钙钛矿太阳能电池; , 界面钝化; , 缺陷; , 电导率; , 界面复合; , 电荷传输

Abstract: Aiming at the large number of defects at the electron transport layer/ perovskite layer interface of perovskite solar cells, an optimized strategy employing an inorganic salt for interface passivation is proposed. This strategy selects low-cost LiCl(Lithium Chloride) as the interface passivation material between the electron transport layer and perovskite layer, and prepares the perovskite solar cell with the device structure of ITO/ TiO2 / LiCl / CH3NH3PbI3 / spiro-OMeTAD/ Ag. After the introduction of LiCl with an optimized concentration, the short- circuit current density and fill factor of the perovskite solar cell achieve 21. 05 mA/ cm 2 and 72. 55% , and the energy conversion efficiency is 16. 95% , which shows an increase of 23. 00% compared with the device without the introduction of LiCl. After characterizing the device and the film, it is found that LiCl can passivate the defects and traps at the interface and increase the conductivity of TiO2 , thereby reducing the interface recombination loss and promoting the charge transport.

Key words: perovskite solar cells; , interface passivation; , defects; , conductivity; , interface recombination; , charge transport

中图分类号: 

  • TM914. 4