Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190 (China); College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou, Jiangsu 215123 (China).
Chem Asian J. 2013 Oct;8(10):2316-28. doi: 10.1002/asia.201300600. Epub 2013 Jul 12.
Polymer solar cells (PSCs) have drawn great attention in recent years for their simple device structure, light weight, and low-cost fabrication in comparison with inorganic semiconductor solar cells. However, the power-conversion efficiency (PCE) of PSCs needs to be increased for their future application. The key issue for improving the PCE of PSCs is the design and synthesis of high-efficiency conjugated polymer donors and fullerene acceptors for the photovoltaic materials. For the acceptor materials, several fullerene-bisadduct acceptors with high LUMO energy levels have demonstrated excellent photovoltaic performance in PSCs with P3HT as a donor. In this Focus Review, recent progress in high-efficiency fullerene-bisadduct acceptors is discussed, including the bisadduct of PCBM, indene-C60 bisadduct (ICBA), indene-C70 bisadduct (IC70BA), DMPCBA, NCBA, and bisTOQC. The LUMO levels and photovoltaic performance of these bisadduct acceptors with P3HT as a donor are summarized and compared. In addition, the applications of an ICBA acceptor in new device structures and with other conjugated polymer donors than P3HT are also introduced and discussed.
聚合物太阳能电池(PSCs)因其与无机半导体太阳能电池相比具有简单的器件结构、重量轻和低成本制造等优点,近年来受到了极大的关注。然而,为了实现其未来的应用,PSCs 的功率转换效率(PCE)需要提高。提高 PSCs 的 PCE 的关键问题是设计和合成高效的共轭聚合物给体和富勒烯受体,用于光伏材料。对于受体材料,几种具有高 LUMO 能级的富勒烯双加成受体与 P3HT 作为给体的 PSCs 相结合,已经表现出了优异的光伏性能。在本重点综述中,讨论了高效富勒烯双加成受体的最新进展,包括 PCBM 的双加成物、茚并-C60 双加成物(ICBA)、茚并-C70 双加成物(IC70BA)、DMPCBA、NCBA 和双 TOQC。总结并比较了这些与 P3HT 作为给体的双加成受体的 LUMO 能级和光伏性能。此外,还介绍并讨论了以 ICBA 受体在新器件结构中和与 P3HT 以外的其他共轭聚合物给体中的应用。