钝化
材料科学
钙钛矿(结构)
分子
能量转换效率
密度泛函理论
噻吩
烷基
化学工程
化学物理
小分子
钙钛矿太阳能电池
光电子学
氢
硫黄
光化学
图层(电子)
无机化学
电荷密度
光伏系统
相对湿度
载流子
化学稳定性
水分
作者
Hao Zhang,Yunfei Sun,Zhiye Zhang,Xinbo Gu,Pengkai Chen,Junhao Wu,Runmeng Li,Zhe Chu,Jin Wang
标识
DOI:10.1021/acsami.6c05331
摘要
Currently, in inverted perovskite solar cells, defect states at the upper interface of the perovskite layer significantly affect carrier nonradiative recombination, while the material's susceptibility to moisture limits the devices' long-term reliability. To address these issues, this study introduces 2-thiopheneethanamine hydriodide for molecular-level reconstruction of the perovskite surface. Density functional theory calculations reveal that the sulfur atom on its thiophene ring forms stable coordination with uncoordinated Pb2+ defect sites on the perovskite surface, while the amino end binds with lattice I- through N-H···I hydrogen bonds, achieving dual-site synergistic passivation. This molecular structure effectively passivates surface defects and promotes efficient charge transport, thereby enhancing electron extraction capabilities, suppressing interfacial recombination, and reducing charge accumulation. Consequently, a significant improvement in power conversion efficiency (PCE) was achieved, reaching 21.15%. In addition, the hydrophobic nature of the alkyl side chain of 2-thiopheneethylamine hydroiodide also significantly inhibits water molecule infiltration, improving the preliminary environmental stability of the devices. Unencapsulated cells retain a significantly higher efficiency than the control group after storage for 500 h in a nitrogen atmosphere at 30% humidity and 25 °C, demonstrating excellent environmental stability.
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