材料科学
钙钛矿(结构)
纳米技术
封装(网络)
相容性(地球化学)
能量转换效率
光伏系统
化学工程
螯合作用
光电子学
泄漏(经济)
聚集诱导发射
晶界
光伏
太阳能
兴奋剂
钙钛矿太阳能电池
工程物理
工艺工程
科技与社会
分子
作者
Fancong Zeng,Xi Su,Zuolin Zhang,Haowei Guan,郭丽华,Meina Chai,Yanrun Jia,Ruilin Lou,Chencheng Hu,Biao Dong,Long Chen,Cong Chen,Lin Xu,Hongwei Song
摘要
ABSTRACT Perovskite solar cells (PSCs) offer strong potential for sustainable energy conversion, yet their reliance on toxic‐lead (Pb) continues to restrict environmental compatibility and large‐scale deployment. To address this challenge, a dual‐interface Pb‐management approach enabled by custom‐designed chelating molecules is introduced. These tailored chelators are engineered with high Pb 2+ affinity and controlled coordination geometry, allowing them to suppress Pb‐related defect formation, promote vertical grain growth, and release residual lattice stress. When synergistically forming an internal encapsulation layer on both sides of the perovskite film with chitosan (CS), it supports efficient charge transport and enhances structural integrity. This configuration reduces Pb leakage to 0.86 ppm after 9 h immersion in pure water, which is below wastewater discharge limits, and efficiently mitigates Pb‐induced biotoxicity. Adopting this strategy p‐i‐n devices maintain 96% of initial performance after 3000 h of exposure and reach a champion efficiency of 26.91% (third‐party certified efficiency 26.60%). The unverified efficiency of n‐i‐p devices reached 25.60%. The strategy is applicable to both p‐i‐n and n‐i‐p device architectures and may be extendable to other Pb‐based perovskite systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI