Department of Engineering Science, The University of Electro-Communications, 1-5-1 Chofugaoka, Chofu, Tokyo 182-8585, Japan.
Chem Commun (Camb). 2023 May 30;59(44):6643-6659. doi: 10.1039/d3cc00748k.
Triplet harvesting is important for high-efficiency optoelectronics devices, time-resolved bioimaging, sensing, and anti-counterfeiting devices. Förster resonance energy transfer (FRET) from the donor (D) to the acceptor (A) is important to efficiently harvest the triplet excitons after a variety of excitations. However, general explanations of the key factors of FRET from the singlet state (FRET) reverse intersystem crossing and FRET from the triplet state (FRET) have not been reported beyond spectral overlap between emission of the D and absorption of the A. This feature article gives an overview of FRET involving the triplet state. After discussing the contribution of the radiation yield from the state of the D considering spin-forbidden factors of FRET, a variety of schemes involving triplet states, such as FRET reverse intersystem crossing from the triplet state, dual FRET and FRET, and selective FRET, are introduced. Representative examples, including the chemical structure and FRET for triplet harvesting, are highlighted using emerging applications in optoelectronics and afterglow imaging. Finally, recent developments of using FRET involving triplet states for high-efficiency optoelectronic devices and time-resolved bioimaging are discussed. This article provides crucial information for controlling state-of-the-art properties using FRET involving the triplet state.
三重态俘获对于高效光电设备、时间分辨生物成像、传感和防伪设备非常重要。供体(D)到受体(A)的Förster 共振能量转移(FRET)对于在多种激发后有效地俘获三重态激子非常重要。然而,除了 D 的发射与 A 的吸收之间的光谱重叠之外,尚未有报道对 FRET 从单重态(FRET)反向系间穿越和 FRET 从三重态(FRET)的关键因素进行一般性解释。本文概述了涉及三重态的 FRET。在讨论了考虑 FRET 辐射产率的 D 状态的辐射产率的贡献后,介绍了各种涉及三重态的方案,例如从三重态反向 FRET 系间穿越、双 FRET 和 FRET 以及选择性 FRET。使用光电和余晖成像中的新兴应用,突出显示了包括三重态收集的化学结构和 FRET 的代表性示例。最后,讨论了使用涉及三重态的 FRET 用于高效光电设备和时间分辨生物成像的最新进展。本文为使用涉及三重态的 FRET 来控制最先进的性质提供了关键信息。