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用于固态高效光子上转换的敏化剂-主体-湮灭剂三元级联三重态能量态势

Sensitizer-host-annihilator ternary-cascaded triplet energy landscape for efficient photon upconversion in the solid state.

作者信息

Sakamoto Yuji, Tamai Yasunari, Ohkita Hideo

机构信息

Department of Polymer Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo, Kyoto 615-8510, Japan.

出版信息

J Chem Phys. 2020 Oct 28;153(16):161102. doi: 10.1063/5.0025438.

Abstract

In this paper, we introduce a new strategy for improving the efficiency of upconversion emissions based on triplet-triplet exciton annihilation (TTA-UC) in the solid state. We designed a ternary blend system consisting of a triplet sensitizer (TS), an exciton-transporting host polymer, and a small amount of an annihilator in which the triplet-state energies of the TS, host, and annihilator decrease in this order. The key idea underpinning this concept involves first transferring the triplet excitons generated by the TS to the host and then to the annihilator, driven by the cascaded triplet energy landscape. Because of the small annihilator blend ratio, the local density of triplet excitons in the annihilator domain is higher than those in conventional binary TS/annihilator systems, which is advantageous for TTA-UC because TTA is a density-dependent bimolecular reaction. We tracked the triplet exciton dynamics in the ternary blend film by transient absorption spectroscopy. Host triplet excitons are generated through triplet energy transfer from the TS following intersystem crossing in the TS. These triplet excitons then diffuse in the host domain and accumulate in the annihilator domain. The accumulated triplet excitons undergo TTA to generate singlet excitons that are higher in energy than the excitation source, resulting in UC emission. Based on the excitation-intensity and blend-ratio dependences of TTA-UC, we found that our concept has a positive impact on accelerating TTA.

摘要

在本文中,我们介绍了一种基于固态三重态-三重态激子湮灭(TTA-UC)提高上转换发射效率的新策略。我们设计了一种三元共混体系,该体系由三重态敏化剂(TS)、激子传输主体聚合物和少量湮灭剂组成,其中TS、主体和湮灭剂的三重态能量按此顺序降低。支撑这一概念的关键思想是,首先将TS产生的三重态激子转移到主体,然后在级联三重态能量态势的驱动下转移到湮灭剂。由于湮灭剂的共混比例较小,湮灭剂域中三重态激子的局部密度高于传统二元TS/湮灭剂体系中的密度,这对TTA-UC有利,因为TTA是一种密度依赖的双分子反应。我们通过瞬态吸收光谱跟踪了三元共混膜中的三重态激子动力学。主体三重态激子是通过TS中的系间窜越后从TS进行三重态能量转移而产生的。然后这些三重态激子在主体域中扩散并在湮灭剂域中积累。积累的三重态激子经历TTA以产生能量高于激发源的单重态激子,从而产生上转换发射。基于TTA-UC的激发强度和共混比例依赖性,我们发现我们的概念对加速TTA有积极影响。

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