Liu Shizhao, Wang Junjie, Wen Shuguang, Bi Fuzhen, Zhu Qianqian, Yang Chunpeng, Yang Chunming, Chu Junhao, Bao Xichang
College of Chemistry and Chemical Engineering, Qingdao University, Qingdao, 266071, China.
Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, 266101, China.
Adv Mater. 2024 May;36(21):e2312959. doi: 10.1002/adma.202312959. Epub 2024 Feb 16.
Ternary strategyopens a simple avenue to improve the power conversion efficiency (PCE) of organic solar cells (OSCs). The introduction of wide bandgap polymer donors (PDs) as third component canbetter utilize sunlight and improve the mechanical and thermal stability of active layer. However, efficient ternary OSCs (TOSCs) with two PDs are rarely reported due to inferior compatibility and shortage of efficient PDs match with acceptors. Herein, two PDs-(PBB-F and PBB-Cl) are adopted in the dual-PDs ternary systems to explore the underlying mechanisms and improve their photovoltaic performance. The findings demonstrate that the third components exhibit excellent miscibility with PM6 and are embedded in the host donor to form alloy-like phase. A more profound mechanism for enhancing efficiency through dual mechanisms, that are the guest energy transfer to PM6 and charge transport at the donor/acceptor interface, has been proposed. Consequently, the PM6:PBB-Cl:BTP-eC9 TOSCs achieve PCE of over 19%. Furthermore, the TOSCs exhibit better thermal stability than that of binary OSCs due to the reduction in spatial site resistance resulting from a more tightly entangled long-chain structure. This work not only provides an effective approach to fabricate high-performance TOSCs, but also demonstrates the importance of developing dual compatible PD materials.
三元策略为提高有机太阳能电池(OSC)的功率转换效率(PCE)开辟了一条简单的途径。引入宽带隙聚合物供体(PD)作为第三组分可以更好地利用太阳光,并提高活性层的机械和热稳定性。然而,由于兼容性较差以及缺乏与受体匹配的高效PD,很少有关于具有两种PD的高效三元有机太阳能电池(TOSC)的报道。在此,在双PD三元体系中采用了两种PD(PBB-F和PBB-Cl)来探索其潜在机制并提高其光伏性能。研究结果表明,第三组分与PM6具有优异的混溶性,并嵌入主体供体中形成类合金相。提出了一种通过双重机制提高效率的更深刻机制,即客体向PM6的能量转移以及在供体/受体界面处的电荷传输。因此,PM6:PBB-Cl:BTP-eC9 TOSC的PCE超过19%。此外,由于更紧密缠结的长链结构导致空间位阻降低,TOSC表现出比二元OSC更好的热稳定性。这项工作不仅提供了一种制造高性能TOSC的有效方法,还证明了开发双兼容PD材料的重要性。