Fumanal Maria, Corminboeuf Clémence
Laboratory for Computational Molecular Design, Institute of Chemical Sciences and Engineering, Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.
Chem Mater. 2022 May 10;34(9):4115-4121. doi: 10.1021/acs.chemmater.2c00367. Epub 2022 Apr 21.
Singlet fission (SF) is a two-step process in which a singlet splits into two triplets throughout the so-called correlated triplet-pair (TT) state. Intramolecular SF (iSF) materials, in particular, have attracted growing interest as they can be easily implemented in single-junction solar cells and boost their power conversion efficiency. Still, the potential of iSF materials such as polymers and oligomers for photovoltaic applications has been partially hindered by their ability to go beyond the TT intermediate and generate free triplets, whose mechanism remains poorly understood. In this work, the main aspects governing the TT dissociation in donor-acceptor copolymers and the key features that optimize this process are exposed. First, we show that both thermodynamics and kinetics play a crucial role in the intramolecular triplet-pair separation and second, we uncover the inherent flexibility of the donor unit as the fundamental ingredient to optimize them simultaneously. Overall, these results provide a better understanding of the intramolecular TT dissociation process and establish a new paradigm for the development of novel iSF active materials.
单线态裂变(SF)是一个两步过程,在此过程中,一个单线态通过所谓的关联三重态对(TT)态分裂为两个三重态。特别是分子内SF(iSF)材料,因其可轻松应用于单结太阳能电池并提高其功率转换效率而受到越来越多的关注。然而,聚合物和低聚物等iSF材料在光伏应用中的潜力仍受到一定限制,因为它们超越TT中间体并产生自由三重态的能力,其机制仍知之甚少。在这项工作中,揭示了供体-受体共聚物中TT解离的主要影响因素以及优化该过程的关键特征。首先,我们表明热力学和动力学在分子内三重态对分离中都起着至关重要的作用;其次,我们发现供体单元固有的灵活性是同时优化它们的基本要素。总体而言,这些结果有助于更好地理解分子内TT解离过程,并为新型iSF活性材料的开发建立了新的范例。