吉林大学学报(信息科学版) ›› 2023, Vol. 41 ›› Issue (5): 832-839.

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基于柠檬酸钠掺杂 SnO2 的钙钛矿太阳能电池

纪永成, 贺 媛, 马 健, 李 昕   

  1. 吉林大学 电子科学与工程学院, 长春 130012
  • 收稿日期:2023-05-23 出版日期:2023-10-09 发布日期:2023-10-10
  • 作者简介:纪永成(1981— ), 男, 长春人, 吉林大学高级工程师, 主要从事集成电路设计研究, (Tel)86-15543776692(E-mail)jiyc@ jlu. edu. cn。
  • 基金资助:
     吉林大学实验技术基金资助项目(SYXM2023a004; 409020720287) 

Perovskite Solar Cells Based on Sodium Citrate Doped SnO2

JI Yongcheng, HE Yuan, MA Jian, LI Xin    

  1. College of Electronic Science and Engineering, Jilin University, Changchun 130012, China
  • Received:2023-05-23 Online:2023-10-09 Published:2023-10-10

摘要: 针对商用 SnO2 水分散液易发生颗粒团聚的问题和提升 SnO2 薄膜电学和表面性能的需求, 提出了一种 利用小分子螯合剂对 SnO2 进行优化的策略。 该策略选用低成本的螯合剂柠檬酸钠(SC: Sodium Citrate) SnO2 传输层进行掺杂, 制备的器件结构为 ITO/ SnO2 +SC/ FA1-xMAxPbI3 / Spiro-OMeTAD/ Au PSCs。 在引入浓度经过 优化的 SC , PSCs 的开路电压和填充因子最高可达 1. 135 V 78. 23% , 能量转换效率为21. 53% , 与未引入 SC 的器件相比获得了明显提升。 对薄膜和器件进行表征后发现, SC 的掺杂可提升 SnO2 薄膜的电学和表面性 能, 进而改善了钙钛矿的结晶。 对集成的器件进行表征发现缺陷密度降低, 载流子复合引起的电压和填充因子 损失减少, 电荷传输的效率得到明显改善。

关键词: 钙钛矿太阳能电池, 二氧化锡, 结晶, 缺陷, 复合损失, 电荷传输

Abstract: Currently, SnO2(Tin Dioxide) has become the most commonly used material for the electron transport layer in high-performance PSCs(Perovskite Solar Cells). A strategy for optimizing SnO2 using a small-molecule chelator is proposed to address the problem of agglomeration-prone commercial SnO2 aqueous dispersions and the need to enhance the electrical and surface properties of SnO2 films. The PSCs with the device structure of ITO/ SnO2+SC / FA1-x MAx PbI3 / Spiro-OMeTAD/ Au are prepared by doping the SnO2 transport layer with a low-cost chelator, SC( Sodium Citrate). After the introduction of SC with an optimized concentration, the open-circuit voltage and fill factor of PSCs can reach up to 1. 135 V and 78. 23% , respectively, with a power conversion efficiency of 21. 53% . This represents a significant improvement compared to the devices without the introduction of SC. The characterization of the films and devices revealed that the doping of SC could enhance the electrical and surface properties of the SnO2 films, which in turn improves perovskite crystallization. As a result, defects in the device are reduced, recombination loss is lowered, and charge transport is promoted.

Key words: perovskite solar cells, tin dioxide, crystallization, defects, recombination loss, charge transport

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