材料科学
甲脒
钙钛矿(结构)
结晶
钝化
化学工程
能量转换效率
光电子学
介孔材料
光伏
佩多:嘘
电子迁移率
载流子寿命
图层(电子)
电极
纳米技术
Crystal(编程语言)
卤化物
介观物理学
调制(音乐)
光伏系统
纳米棒
晶体生长
作者
Zexiong Qiu,Jiale Liu,Xiaoyu Li,Kai Chen,Jianhang Qi,Junwei Xiang,Chuanzhou Han,Yanjie Cheng,Song Shen,Siqi Jiang,Yang Zhou,Anyi Mei,Hongwei Han
摘要
ABSTRACT Hole‐conductor‐free, printable mesoscopic perovskite solar cells with carbon electrodes present a viable strategy for industrial manufacturing of photovoltaics with low cost. However, depositing perovskite absorber within their intricate triple‐layer (TiO 2 /ZrO 2 /carbon) mesoporous scaffold makes it challenging to regulate the crystallization process, leading to limited crystal quality and high defect density of perovskite, resulting in performance loss. Moreover, the adopted TiO 2 electron transport layer (ETL) with insufficient electrical properties and high surface defect density restricts the carrier injection at the ETL/perovskite interface and exacerbates recombination loss. Herein, two sulfonamide additives, including sulfanilamide (SA) and sulfaguanidine (SG), are introduced into the perovskite precursor. Both additives present strong interaction capability with the key components, such as Pb 2+ and formamidinium (FA + ) of the halide perovskite, thus regulating the crystallization processes. Meanwhile, they passivate surface defects and enhance the electrical property of TiO 2 , thus promoting carrier injection at the ETL/perovskite interface. With their concurrent modulation in crystallization and interface, SA and SG improve the device power conversion efficiencies to 19.84% and 21.50% from 18.02%. Meanwhile, the better‐performing SG device retains 90% of its initial PCE after 530 h of maximum power point tracking at 55°C ± 5°C under 1‐sun illumination.
科研通智能强力驱动
Strongly Powered by AbleSci AI