有机太阳能电池
平面度测试
材料科学
分子内力
带隙
共轭体系
非共价相互作用
轨道能级差
接受者
噻吩
聚合物太阳能电池
小分子
光电子学
能量转换效率
光化学
纳米技术
结晶学
聚合物
立体化学
有机化学
化学
分子
氢键
物理
复合材料
生物化学
凝聚态物理
作者
Dongxue Liu,Bin Kan,Xin Ke,Nan Zheng,Zengqi Xie,Di Lu,Yongsheng Liu
标识
DOI:10.1002/aenm.201801618
摘要
Abstract Three low‐bandgap nonfullerene acceptors (NFAs) IDTO‐T‐4F, IDTO‐Se‐4F, and IDTO‐TT‐4F with extended conjugation length are designed and synthesized. Various π‐spacers, thiophene, selenophene, and thieno[3,2‐ b ]thiophene are incorporated to extend the conjugated length and enhance the backbone planarity via noncovalent O···S or O···Se interactions. These NFAs exhibit strong light absorption in the range of 600–900 nm with narrow bandgaps between 1.38 and 1.45 eV. By blending with a wide‐bandgap donor material PBDB‐T, organic solar cells (OSCs) based on these NFAs all yield high efficiency over 10% with low energy losses ranging from 0.52 to 0.59 eV. Importantly, as a result of relatively high lowest unoccupied molecular orbital level, large hole and electron mobility in blend film, and low charge carrier recombination loss, optimized devices based on IDTO‐T‐4F exhibit a large open‐circuit voltage of 0.864 V, a high short‐circuit current density of 20.12 mA cm −2 , and a notable fill factor of 72.7%, leading to an impressive efficiency of 12.62%, which represents the best performance for NFA OSCs using noncovalent interactions in acceptor molecule design. The results indicate that optimizing the conjugation length and backbone planarity via intramolecular noncovalent O···S or O···Se interactions is a useful strategy for NFA materials invention toward high‐performance solar cells.
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