Sun Yanna, Ma Ruijie, Kan Yuanyuan, Liu Tao, Zhou Kangkang, Liu Pengke, Fang Jin, Chen Yiyao, Ye Long, Ma Changqi, Yan He, Gao Ke
Science Center for Material Creation and Energy Conversion, Institute of Frontier and Interdisciplinary Science, Shandong University, Qingdao, Shandong, 266237, China.
Department of Chemistry, Guangdong-Hong Kong-Macao Joint Laboratory of Optoelectronic and Magnetic Functional Materials, Energy Institute and Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration & Reconstruction, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, 999077, China.
Macromol Rapid Commun. 2022 Nov;43(22):e2200139. doi: 10.1002/marc.202200139. Epub 2022 Apr 1.
All-polymer solar cells (all-PSCs) are one of the most promising application-oriented organic photovoltaic technologies due to their excellent operational and mechanical stability. However, the power conversion efficiencies (PCEs) are mostly lower than 16%, restricting their core competitiveness. Furthermore, the improvement of mechanical durability is rarely paid attention to cutting-edge all-PSCs. This work deploys a low-cost "technical grade" PCBM (incompletely separated but pure mixtures containing ≥90% [70]PCBM or [60]PCBM), into the efficient PM6:PY-IT all-polymer blend, successfully yielding a high-performance ternary device with 16.16% PCE, among the highest PCE values for all-PSCs. Meanwhile, an excellent mechanical property (i.e., crack onset strain = 11.1%) promoted from 9.5% for the ternary system is also demonstrated. The "technical grade" PCBM slightly disrupts the crystallization of polymers, and disperses well into the amorphous polymer regions of the all-PSC blends, thus facilitating charge transport and improving film ductility simultaneously. All these results confirm introducing low-cost "technical grade" PCBM with high electron mobility into all-polymer blends can improve carrier mobility, reduce charge recombination, and optimize morphology of the amorphous polymer regions, thus yielding more efficient and mechanically durable all-PSCs.
全聚合物太阳能电池(all-PSC)由于其出色的运行和机械稳定性,是最具前景的面向应用的有机光伏技术之一。然而,其功率转换效率(PCE)大多低于16%,限制了它们的核心竞争力。此外,前沿的全聚合物太阳能电池很少关注机械耐久性的提升。这项工作将低成本的“工业级”PCBM(包含≥90%[70]PCBM或[60]PCBM的未完全分离但纯净的混合物)应用于高效的PM6:PY-IT全聚合物共混物中,成功制备出一种高性能三元器件,其PCE为16.16%,是全聚合物太阳能电池中PCE最高值之一。同时,还展示了其优异的机械性能(即裂纹起始应变=11.1%),相比三元体系提升了9.5%。“工业级”PCBM轻微干扰了聚合物的结晶,并很好地分散到全聚合物太阳能电池共混物的非晶态聚合物区域中,从而同时促进了电荷传输并改善了薄膜延展性。所有这些结果证实,将具有高电子迁移率的低成本“工业级”PCBM引入全聚合物共混物中,可以提高载流子迁移率,减少电荷复合,并优化非晶态聚合物区域的形态,从而制备出更高效且机械耐久性更好的全聚合物太阳能电池。