光电探测器
光电子学
量子点
复合数
能量转换效率
量子效率
灵活性(工程)
光伏系统
聚合物太阳能电池
稳健性(进化)
材料科学
化学
性能增强
光伏
纳米技术
石墨烯
聚合物
硫化铅
量子
工作(物理)
热塑性塑料
可穿戴计算机
可穿戴技术
作者
Youdi Zhang,Pai Peng,Yang Xu,Jingjing Wang,Biao Xiao,Vakhobjon Kuvondikov,Sherzod Nematov,Long Ye,Junwei Liu
摘要
Comprehensive Summary Quantum dots (QDs) have attracted significant attention in devices such as solar cells and photodetectors. Although polymer‐based hole transport layers (HTLs) have been employed in QD devices, their mechanical flexibility remains underexplored and insufficient for wearable applications. Here, we present a novel interlayer design for PbS QD solar cells and photodetectors by incorporating a low‐cost thermoplastic elastomer, SEBS (styrene‐ethylene‐butylene‐styrene), into the polymer HTL. The addition of 10 wt% SEBS promotes a more ordered molecular packing of PM6. As a result, PbS QD solar cells achieved a power conversion efficiency of 11.43%, while the corresponding photodetectors exhibited a high specific detectivity of 2.12 × 10 13 Jones—among the highest reported values. Beyond performance improvements, SEBS significantly enhances the mechanical flexibility of the HTLs. This work presents a new and effective strategy for simultaneously optimizing the optoelectronic performance and mechanical robustness of QD‐based devices.
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