Feng Shiyu, Zhang Cai'e, Bi Zhaozhao, Liu Yahui, Jiang Pengcheng, Ming Shouli, Xu Xinjun, Ma Wei, Bo Zhishan
Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry , Beijing Normal University , Beijing 100875 , China.
State Key Laboratory for Mechanical Behavior of Materials , Xi'an Jiaotong University , Xi'an 710049 , China.
ACS Appl Mater Interfaces. 2019 Jan 23;11(3):3098-3106. doi: 10.1021/acsami.8b19596. Epub 2019 Jan 9.
A nonfullerene acceptor, IDTT-OB, employing indacenodithieno[3,2- b]thiophene (IDTT) decorated with asymmetric substituents as the core, is designedly prepared. In comparison with the analogue IDT-OB, extending the five-heterocyclic indacenodithiophene (IDT) core to seven-heterocyclic fused ring endows IDTT-OB with more broad absorption and elevated highest occupied molecular orbital energy level. In addition, IDTT-OB shows a more intense molecular packing and a higher crystalline behavior with a strong face-on orientation in the neat film and the PBDB-T:IDTT-OB blend film. Furthermore, an ideal nanomorphology with a domain size of 19 nm can be obtained, which is in favor of exciton diffusion and charge separation. Accordingly, PBDB-T:IDTT-OB-based polymer solar cells demonstrate a maximum power conversion efficiency (PCE) of 11.19% with an impressive fill factor of 0.74, comparable to the state-of-the-art acceptors with similar molecular backbones. More importantly, IDTT-OB-based devices show good tolerance to the film thickness, which maintain a high PCE of 10.20% with a 250 nm thick active layer, demonstrating that the asymmetric acceptor is profound for fabricating high-efficiency thick-film nonfullerene solar cells.
设计制备了一种非富勒烯受体IDTT-OB,其以带有不对称取代基的茚并二噻吩并[3,2-b]噻吩(IDTT)为核心。与类似物IDT-OB相比,将五元杂环茚并二噻吩(IDT)核心扩展为七元杂环稠环,使IDTT-OB具有更宽的吸收范围和更高的最高占据分子轨道能级。此外,IDTT-OB在纯膜和PBDB-T:IDTT-OB共混膜中表现出更强的分子堆积和更高的结晶行为,具有强烈的面取向。此外,可以获得理想的纳米形貌,域尺寸为19nm,这有利于激子扩散和电荷分离。因此,基于PBDB-T:IDTT-OB的聚合物太阳能电池表现出11.19%的最大功率转换效率(PCE)和令人印象深刻的0.74的填充因子,与具有相似分子骨架的最先进受体相当。更重要的是,基于IDTT-OB的器件对膜厚度具有良好的耐受性,在活性层厚度为250nm时仍保持10.20%的高PCE,表明这种不对称受体对于制备高效厚膜非富勒烯太阳能电池具有重要意义。