Gudem Mahesh, Kowalewski Markus
Department of Physics, Stockholm University, Albanova University Centre, SE-106 91, Stockholm, Sweden.
Chemistry. 2022 Jul 15;28(40):e202200781. doi: 10.1002/chem.202200781. Epub 2022 Jun 21.
Triplet-triplet annihilation (TTA) is a spin-allowed conversion of two triplet states into one singlet excited state, which provides an efficient route to generate a photon of higher frequency than the incident light. Multiple energy transfer steps between absorbing (sensitizer) and emitting (annihilator) molecular species are involved in the TTA based photon upconversion process. TTA compounds have recently been studied for solar energy applications, even though the maximum upconversion efficiency of 50 % is yet to be achieved. With the aid of quantum calculations and based on a few key requirements, several design principles have been established to develop the well-functioning annihilators. However, a complete molecular level understanding of triplet fusion dynamics is still missing. In this work, we have employed multi-reference electronic structure methods along with quantum dynamics to obtain a detailed and fundamental understanding of TTA mechanism in naphthalene. Our results suggest that the TTA process in naphthalene is mediated by conical intersections. In addition, we have explored the triplet fusion dynamics under the influence of strong light-matter coupling and found an increase of the TTA based upconversion efficiency.
三重态-三重态湮灭(TTA)是一种自旋允许的过程,即两个三重态转化为一个单重激发态,它提供了一条产生比入射光频率更高的光子的有效途径。基于TTA的光子上转换过程涉及吸收(敏化剂)和发射(湮灭剂)分子物种之间的多个能量转移步骤。尽管尚未实现50%的最大上转换效率,但TTA化合物最近已被用于太阳能应用研究。借助量子计算并基于一些关键要求,已经建立了几个设计原则来开发功能良好的湮灭剂。然而,对三重态融合动力学仍缺乏完整的分子水平理解。在这项工作中,我们采用多参考电子结构方法以及量子动力学来详细且深入地理解萘中的TTA机制。我们的结果表明,萘中的TTA过程由锥形交叉介导。此外,我们还研究了强光-物质耦合影响下的三重态融合动力学,发现基于TTA的上转换效率有所提高。