Defect Passivation Using Trichloromelamine for Highly Efficient and Stable Perovskite Solar Cells
Qiaoli Niu, Ling Zhang, Yao Xu, Chaochao Yuan, Weijie Qi, Shuai Fu, Yuhui Ma, Wenjin Zeng, Ruidong Xia, Yonggang Min
Abstract
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Qiaoli Niu, Ling Zhang, Yao Xu, Chaochao Yuan, Weijie Qi, Shuai Fu, Yuhui Ma, Wenjin Zeng, Ruidong Xia, Yonggang Min
Abstract
Open-access reader
Nonradiative recombination losses caused by defects in the perovskite layer seriously affects the efficiency and stability of perovskite solar cells (PSCs). Hence, defect passivation is an effective way to improve the performance of PSCs. In this work, trichloromelamine (TCM) was used as a defects passivator by adding it into the perovskite precursor solution. The experimental results show that the power conversion efficiency (PCE) of PSC increased from 18.87 to 20.15% after the addition of TCM. What's more, the environmental stability of PSCs was also improved. The working mechanism of TCM was thoroughly investigated, which can be ascribed to the interaction between the -NH- group and uncoordinated lead ions in the perovskite. This work provides a promising strategy for achieving highly efficient and stable PSCs.
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Nonradiative recombination losses caused by defects in the perovskite layer seriously affects the efficiency and stability of perovskite solar cells (PSCs). Hence, defect passivation is an effective way to improve the performance of PSCs. In this work, trichloromelamine (TCM) was used as a defects passivator by adding it into the perovskite precursor solution. The experimental results show that the power conversion efficiency (PCE) of PSC increased from 18.87 to 20.15% after the addition of TCM. What's more, the environmental stability of PSCs was also improved. The working mechanism of TCM was thoroughly investigated, which can be ascribed to the interaction between the -NH- group and uncoordinated lead ions in the perovskite. This work provides a promising strategy for achieving highly efficient and stable PSCs.
Key concepts: Passivation, Perovskite (structure), Materials science, Energy conversion efficiency, Chemical engineering, Layer (electronics), Work (physics), Ion