材料科学
钝化
封装(网络)
钙钛矿(结构)
三氟甲基
光伏系统
化学工程
光电子学
光化学
无机化学
纳米技术
有机化学
计算机网络
生态学
烷基
化学
图层(电子)
计算机科学
工程类
生物
作者
Wanqi Zhang,Yan Li,Xiangfei Song,Yang He,Zihu Kang,Yue Zheng,Xia Tao
标识
DOI:10.1021/acsami.5c00846
摘要
Perovskite solar cells (PSCs) have made significant progress in efficiency, but their long-term operational stability remains an important yet challenging issue. Here, a dual-site passivation coupling internal encapsulation strategy is developed by introducing 3,5-bis(trifluoromethyl)-benzenethiol (35BBT) at the perovskite (PVK)/hole transport layer (HTL) interface. 35BBT provides dual active sites containing sulfur (S) atoms and fluorine (F) atoms, where the S atoms in the sulfhydryl group and the F atoms in the trifluoromethyl group coordinate with unpaired Pb2+ to form coordinate bonds, meanwhile the F atoms in the trifluoromethyl group form hydrogen bonds with organic cations. This dual-site passivation mitigates deep and shallow defects at the PVK/HTL interface. Notably, 35BBT, with hydrophobic trifluoromethyl and benzene rings covering the perovskite layer, enables internal encapsulation to protect the perovskite films from water and oxygen invasion. Consequently, the Ag-based device with 35BBT treatment achieves an efficiency enhancement from 22.03% to 23.86%, retaining 89.1% of its initial efficiency even after 2000 h of air exposure. This fabricated device also exhibits long-term thermal stability at 60 °C. This study offers an avenue for simultaneously passivating deep and shallow defects at the PVK/HTL interface and inhibiting water/oxygen erosion, thereby enabling the fabrication of efficient and stable PSCs for future commercial applications.
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