Department of Chemistry-Ångström Laboratory, Center of Molecular Devices, Uppsala University , SE-751 20 Uppsala, Sweden.
Laboratory of Photomolecular Science, Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne , Chemin des Alambics, Station 6, CH-1015 Lausanne, Switzerland.
ACS Appl Mater Interfaces. 2016 Dec 7;8(48):32797-32804. doi: 10.1021/acsami.6b09671. Epub 2016 Nov 28.
Blue and green dyes as well as NIR-absorbing dyes have attracted great interest because of their excellent ability of absorbing the incident photons in the red and near-infrared range region. A novel blue D-π-A dye (Dyenamo Blue), based on the diketopyrrolopyrrole (DPP)-core, has been designed and synthesized. Assembled with the cobalt bipyridine-based electrolytes, the device with Dyenamo Blue achieved a satisfying efficiency of 7.3% under one sun (AM1.5 G). The co-sensitization strategy was further applied on this blue organic dye together with a red D-π-A dye (D35). The successful co-sensitization outperformed a panchromatic light absorption and improved the photocurrent density; this in addition to the open-circuit potential result in an efficiency of 8.7%. The extended absorption of the sensitization and the slower recombination reaction between the blue dye and TiO surface inhibited by the additional red sensitizer could be the two main reasons for the higher performance. In conclusion, from the results, the highly efficient cobalt-based DSSCs could be achieved with the co-sensitization between red and blue D-π-A organic dyes with a proper design, which showed us the possibility of applying this strategy for future high-performance solar cells.
蓝色和绿色染料以及近红外吸收染料因其在红光和近红外区域吸收入射光子的优异能力而引起了极大的兴趣。一种基于二酮吡咯并吡咯(DPP)-核心的新型蓝色 D-π-A 染料(Dyenamo Blue)已被设计和合成。与钴联吡啶基电解质组装后,Dyenamo Blue 器件在一个太阳(AM1.5 G)下实现了令人满意的 7.3%的效率。共敏化策略进一步应用于这种蓝色有机染料与红色 D-π-A 染料(D35)。成功的共敏化实现了全色光吸收,并提高了光电流密度;这除了开路电位的结果导致效率为 8.7%。敏化的扩展吸收和由额外的红色敏化剂抑制的蓝色染料和 TiO 表面之间的较慢的复合反应可能是性能提高的两个主要原因。总之,从结果来看,通过红色和蓝色 D-π-A 有机染料的适当设计进行共敏化,可以实现高效的钴基 DSSC,这为未来高性能太阳能电池应用该策略提供了可能性。