Triplet-Pair States in Organic Semiconductors.

IF 11.7 1区 化学 Q1 CHEMISTRY, PHYSICAL Annual review of physical chemistry Pub Date : 2019-06-14 DOI:10.1146/annurev-physchem-042018-052435
Andrew J Musser, Jenny Clark
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引用次数: 81

Abstract

Entanglement of states is one of the most surprising and counterintuitive consequences of quantum mechanics, with potent applications in cryptography and computing. In organic semiconductor materials, one particularly significant manifestation is the spin-entangled triplet-pair state, which consists of a pair of localized triplet excitons coupled into an overall spin-0, -1, or -2 configuration. The most widely analyzed of these is the spin-0 pair, denoted 1(TT), which was initially invoked in the 1960s to explain delayed fluorescence in acene films. It is considered an essential gateway state for triplet-triplet annihilation and the reverse process, singlet fission, enabling interconversion between one singlet and two triplet excitons without any change in overall spin. This state has returned to the forefront of organic materials research in recent years, thanks both to its central role in the resurgent field of singlet fission and to its implication in a host of exotic new photophysical behaviors. Here we review the properties of triplet-pair states, from first principles to recent experimental results.

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有机半导体中的三重对态。
态的纠缠是量子力学中最令人惊讶和违反直觉的结果之一,在密码学和计算中有着强有力的应用。在有机半导体材料中,一个特别重要的表现是自旋纠缠的三重态,它由一对局部的三重态激子组成,它们耦合成一个整体的自旋0、-1或-2构型。其中分析最广泛的是自旋-0对,记为1(TT),它最初在20世纪60年代被用来解释亚烯薄膜中的延迟荧光。它被认为是三重态-三重态湮灭和相反过程——单重态裂变——的基本入口态,使一个单重态和两个三重态激子之间的相互转换在总体自旋没有任何变化的情况下实现。近年来,由于它在单线态裂变领域的核心作用以及它在许多奇异的新光物理行为中的含义,这种状态又回到了有机材料研究的前沿。在这里,我们回顾了三重态的性质,从第一原理到最近的实验结果。
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来源期刊
CiteScore
28.00
自引率
0.00%
发文量
21
期刊介绍: The Annual Review of Physical Chemistry has been published since 1950 and is a comprehensive resource for significant advancements in the field. It encompasses various sub-disciplines such as biophysical chemistry, chemical kinetics, colloids, electrochemistry, geochemistry and cosmochemistry, chemistry of the atmosphere and climate, laser chemistry and ultrafast processes, the liquid state, magnetic resonance, physical organic chemistry, polymers and macromolecules, and others.
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