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Quantifying the Plasmonic Character of Optical Excitations in a Molecular J-Aggregate

机译:定量分子J骨料中光学激发等离子体特性

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The definition of plasmon at the microscopic scale is far from being understood. Yet, it is very important to recognize plasmonic features in optical excitations, as they can inspire new applications and trigger new discoveries by analogy with the rich phenomenology of metal nanoparticle plasmons. Recently, the concepts of plasmonicity index and the generalized plasmonicity index (GPI) have been devised as computational tools to quantify the plasmonic nature of optical excitations. The question may arise whether any strong absorption band, possibly with some sort of collective character in its microscopic origin, shares the status of plasmon. Here we demonstrate that this is not always the case, by considering a well-known class of systems represented by J-aggregates molecular crystals, characterized by the intense J band of absorption. By means of first-principles simulations, based on a many-body perturbation theory formalism, we investigate the optical properties of a J-aggregate made of push-pull organic dyes. We show that the effect of aggregation is to lower the GPI associated with the J-band with respect to the isolated dye one, which corresponds to a nonplasmonic character of the electronic excitations. In order to rationalize our finding, we then propose a simplified one-dimensional theoretical model of the J-aggregate. A useful microscopic picture of what discriminates a collective molecular crystal excitation from a plasmon is eventually obtained.
机译:在微观规模处的等离子体的定义远远受理。然而,非常重要的是要识别光学激发中的等离子体特征,因为它们可以激发新的应用,并通过模拟与金属纳米粒子等离子体的丰富现象学相比引发新发现。最近,已经设计了等离子性指数和广义等级指数(GPI)的概念被设计为计算工具,以量化光学激励的等离子体性质。这些问题可能会出现任何强有力的吸收带,可能在其微观原点中有某种集体特征,分享了等离子体的状态。在这里,我们证明了这种情况并非总是如此,通过考虑由j聚集体分子晶体表示的众所周知的系统,其特征在于由浓度的j吸收带。通过第一原理模拟,基于许多身体扰动理论形式主义,研究了由推拉有机染料制成的J骨料的光学性质。我们表明聚集的效果是降低与彼此相关的GPI相对于孤立的染料一体,这对应于电子激发的非完拉性特性。为了合理化我们的发现,我们提出了一个简化的J-emplate的一维理论模型。最终获得从等离子体中辨别集体分子晶体激发的有用的微观图。

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