材料科学
有机太阳能电池
制作
化学工程
冷凝
能量转换效率
热稳定性
接受者
聚合物太阳能电池
结晶度
亚稳态
原位
光伏系统
光刻
相对湿度
聚合物
光活性层
异质结
纳米技术
化学稳定性
热解
光化学
作者
Shengyi Li,Yunfan Yang,Weikun Chen,Xinhui Lu,Jiahui Xiang,Jiangbin Zhang,Kai Han,Jun Yuan,Zhiyun Xu,Yingping Zou
出处
期刊:Small
[Wiley]
日期:2026-03-18
卷期号:22 (27): e73151-e73151
摘要
Ambient fabrication processes are essential for the industrial production of high-efficiency organic solar cells (OSCs). Nevertheless, achieving both high efficiency and long-term stability under ambient conditions remains a major challenge. Herein, vinyltrimethoxysilane (VTMS) is introduced as an organosilane crosslinker that hydrolyzes and condenses in air to form a "Si─O─Si" crosslinking network, which stabilizes the metastable bulk heterojunction film and enables the fabrication of efficient and stable inverted OSCs under ambient conditions. The strong interfacial interactions between VTMS and the active layer effectively regulate molecular packing, reducing the crystallinity disparity between the donor and acceptor and thus promoting charge transport in the device. As a result, the inverted PM6:BTP-eC9 device with VTMS incorporation delivers a power conversion efficiency (PCE) of 18.29%, surpassing the pristine device (16.82%), accompanied by an improved fill factor from 73.9% to 77.4%. The optimized devices also exhibit excellent stability, with the unencapsulated VTMS-added device retaining 92.96% of its initial PCE after 2875 h at 35% relative humidity under ambient conditions, and 90.11% after 1320 h of thermal aging at 85°C in nitrogen. The in situ condensation of organosilanes significantly mitigates moisture-induced degradation, enabling one of the highest efficiencies reported for inverted OSCs under ambient conditions.
科研通智能强力驱动
Strongly Powered by AbleSci AI