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通过强光-物质耦合实现有机分子中的无障碍反向系间窜越

Barrier-free reverse-intersystem crossing in organic molecules by strong light-matter coupling.

作者信息

Yu Yi, Mallick Suman, Wang Mao, Börjesson Karl

机构信息

Department of Chemistry and Molecular Biology, University of Gothenburg, Gothenburg, Sweden.

出版信息

Nat Commun. 2021 May 31;12(1):3255. doi: 10.1038/s41467-021-23481-6.

Abstract

Strong light-matter coupling provides the means to challenge the traditional rules of chemistry. In particular, an energy inversion of singlet and triplet excited states would be fundamentally remarkable since it would violate the classical Hund's rule. An organic chromophore possessing a lower singlet excited state can effectively harvest the dark triplet states, thus enabling 100% internal quantum efficiency in electrically pumped light-emitting diodes and lasers. Here we demonstrate unambiguously an inversion of singlet and triplet excited states of a prototype molecule by strong coupling to an optical cavity. The inversion not only implies that the polaritonic state lies at a lower energy, but also a direct energy pathway between the triplet and polaritonic states is opened. The intrinsic photophysics of reversed-intersystem crossing are thereby completely overturned from an endothermic process to an exothermic one. By doing so, we show that it is possible to break the limit of Hund's rule and manipulate the energy flow in molecular systems by strong light-matter coupling. Our results will directly promote the development of organic light-emitting diodes based on reversed-intersystem crossing. Moreover, we anticipate that it provides the pathway to the creation of electrically pumped polaritonic lasers in organic systems.

摘要

强光与物质耦合为挑战传统化学规则提供了途径。特别是,单重态和三重态激发态的能量反转将具有根本上的重要意义,因为这将违反经典的洪德规则。具有较低单重态激发态的有机发色团能够有效地捕获暗三重态,从而在电泵浦发光二极管和激光器中实现100%的内量子效率。在此,我们通过与光学腔的强耦合明确地证明了一个原型分子的单重态和三重态激发态发生了反转。这种反转不仅意味着极化激元态处于较低能量,而且还打开了三重态与极化激元态之间的直接能量通道。由此,反向系间窜越的固有光物理过程从吸热过程完全转变为放热过程。通过这样做,我们表明有可能打破洪德规则的限制,并通过强光与物质耦合来操纵分子系统中的能量流动。我们的结果将直接推动基于反向系间窜越的有机发光二极管的发展。此外,我们预计这将为在有机系统中创建电泵浦极化激元激光器提供途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1227/8167092/949bd833578a/41467_2021_23481_Fig1_HTML.jpg

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