研究目的
To explore and optimize a conducting polymer of lignosulfonic acid-grafted, polyaniline-doped camphorsulfonic acid (LS-PANI-CSA) as an efficient hole-transport layer (HTL) for inverted single cation?anion CH3NH3PbI3 perovskite solar cells by tuning the morphology and work function of LS-PANI-CSA films using dimethylsulfoxide (DMSO) as a solvent in treatment.
研究成果
The study demonstrates that DMSO-treated LS-PANI-CSA can serve as an efficient HTL in perovskite solar cells, leading to improved device performance and stability. The treatment enhances the electronic properties and hydrophobicity of the HTL, which are crucial for perovskite growth and device efficiency. The findings suggest that LS-PANI-CSA is a promising alternative to traditional HTLs like PEDOT:PSS for perovskite solar cells.
研究不足
The study is limited by the specific materials and methods used, such as the focus on LS-PANI-CSA and DMSO treatment. The performance of the solar cells may vary with different materials or treatment methods. Additionally, the study does not explore the scalability of the fabrication process for industrial applications.