Suppressing Fluoride Segregation for High Efficiency Tin Perovskite Solar Cells

Authors: Mingyu Ma, Xianyuan Jiang, Zihao Zang, Xin Wen, Wei Zhou, Haobo Wu, Si Peng, Yunlong Liu, Hansheng Li, Danni Yu, Hao Liang, Hao Wang, Wenjia Zhou, Zhenhuang Su, Fan Zheng, Xingyu Gao, Alexei V. Emeline, Constantinos C. Stoumpos, Zhijun Ning

Published: 2024-07-16

DOI: 10.1002/adfm.202407095

Source: Full article


Abstract

AbstractPhase segregation can bring low crystallinity and orientation, giving rise to poor carrier transport and high defect density, leading to poor device performance. In order to reduce oxidation and defect density and regulate film growth, lots of reductive additives such as SnF2 are explored as additives in tin perovskite film growth. Despite the oxidation is effectively reduced, it induces phase segregation. Herein, a reductive molecule NH5F2 with a bi‐fluoride anion is explored to address this challenge for tin perovskite solar cells. This bi‐fluoride anion reduces coordination energy with Sn2+ compared to SnF2, hence the byproduct of [F─H─F]− can be eliminated during the film annealing process, effectively preventing fluoride segregation. As a result, a highly oriented perovskite film with reduced oxidation is fabricated. The film shows reduced defect density and carrier recombination, leading to improved current density. Consequently, a tin‐based perovskite solar cell with an efficiency of 15.04% is fabricated, ranking as one of the highest efficiencies reported up to now.