Luo Zhenghui, Ma Ruijie, Xiao Yiqun, Liu Tao, Sun Huiliang, Su Mengyao, Guo Qing, Li Guanghao, Gao Wei, Chen Yuzhong, Zou Yang, Guo Xugang, Zhang Maojie, Lu Xinhui, Yan He, Yang Chuluo
Shenzhen Key Laboratory of Polymer Science and Technology, College of Materials Science and Engineering, Shenzhen University, Shenzhen, 518060, China.
Department of Chemistry and Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, Hong Kong University of Science and Technology (HKUST), Clear Water Bay, Kowloon, Hong Kong, 999077, China.
Small. 2020 Jul;16(30):e2001942. doi: 10.1002/smll.202001942. Epub 2020 Jun 29.
Understanding the conformation effect on molecular packing, miscibility, and photovoltaic performance is important to open a new avenue for small-molecule acceptor (SMA) design. Herein, two novel acceptor-(donor-acceptor1-donor)-acceptor (A-DA1D-A)-type asymmetric SMAs are developed, namely C-shaped BDTP-4F and S-shaped BTDTP-4F. The BDTP-4F-based polymer solar cells (PSCs) with PM6 as donor, yields a power conversion efficiency (PCE) of 15.24%, significantly higher than that of the BTDTP-4F-based device (13.12%). The better PCE for BDTP-4F-based device is mainly attributed to more balanced charge transport, weaker bimolecular recombination, and more favorable morphology. Additionally, two traditional A-D-A-type SMAs (IDTP-4F and IDTTP-4F) are also synthesized to investigate the conformation effect on morphology and device performance. Different from the device result above, here, IDTP-4F with S-shape conformation outperforms than IDTTP-4F with C-shape conformation. Importantly, it is found that for these two different types of SMA, the better performing binary blend has similar morphological characteristics. Specifically, both PM6:BDTP-4F and PM6:IDTP-4F blend exhibit perfect nanofibril network structure with proper domain size, obvious face-on orientation and enhance donor-acceptor interactions, thereby better device performance. This work indicates tuning molecular conformation plays pivotal role in morphology and device effciciency, shining a light on the molecular design of the SMAs.
了解构象对分子堆积、混溶性和光伏性能的影响对于开辟小分子受体(SMA)设计的新途径至关重要。在此,开发了两种新型受体-(供体-受体1-供体)-受体(A-DA1D-A)型不对称SMA,即C形BDTP-4F和S形BTDTP-4F。以PM6为供体的基于BDTP-4F的聚合物太阳能电池(PSC)的功率转换效率(PCE)为15.24%,显著高于基于BTDTP-4F的器件(13.12%)。基于BDTP-4F的器件具有更好的PCE主要归因于更平衡的电荷传输、更弱的双分子复合以及更有利的形态。此外,还合成了两种传统的A-D-A型SMA(IDTP-4F和IDTTP-4F)以研究构象对形态和器件性能的影响。与上述器件结果不同,在此,具有S形构象的IDTP-4F优于具有C形构象的IDTTP-4F。重要的是,发现对于这两种不同类型的SMA,性能更好的二元共混物具有相似的形态特征。具体而言,PM6:BDTP-4F和PM6:IDTP-4F共混物均表现出具有适当畴尺寸的完美纳米纤维网络结构、明显的面内取向并增强了供体-受体相互作用,从而具有更好的器件性能。这项工作表明调节分子构象在形态和器件效率中起关键作用,为SMA的分子设计提供了启示。