Anisotropic Photophysical Properties of Plexcitons in Strongly Coupled Metal–Organic Thin Films

IF 6.7 1区 物理与天体物理 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Maximilian Rödel*, Luca Nils Philipp, Jin Hong Kim, Matthias Lehmann, Matthias Stolte, Roland Mitric*, Frank Würthner* and Jens Pflaum*, 
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Abstract

Exciton–plasmon polaritons have gained increasing interest over recent years due to their versatile properties emerging by the underlying light–matter coupling and making them potential candidates for new photonic applications. We have advanced this concept by studying thin films of laterally aligned J-aggregates of self-assembled tetra-bay phenoxy-dendronized perylene bisimide (PBI) molecules, arranged in a helical manner of three slip-stacked strands on a silver surface. As a result of the interaction between the uniformly aligned dipole moments and the surface plasmons of a thin silver layer underneath, the excitonic state at 1.94 eV evolves into dispersions in absorption and emission, both characterized by distinct anisotropy. The coupling constant defined by the scalar product of the transition dipole moment μ⃗ and the surface plasmon wavevector k⃗x shows a pronounced 2-fold rotational symmetry with values between almost 0 and 29.5 meV. Complementary time-dependent density functional theory (TD-DFT) calculations of the angular-dependent absorption and photoluminescence (PL) provide insights in the coherent energy exchange between the excitonic and plasmonic subsystems. Additionally, power-dependent PL studies yield first evidence that the diffusion length of the coupled exciton–plasmon polaritons exceeds that of the mere Frenkel state in neat PBI-based J-aggregates by at least 1 order of magnitude. Our results not only demonstrate the possibility to control the photophysical properties of strongly coupled states by their spatially anisotropic light–matter interaction but also reveal innovative strategies to influence optoelectronic device operation by the directional transport of hybrid-state energy.

Abstract Image

强耦合金属-有机薄膜中pl激子的各向异性光物理性质
近年来,激子-等离子激元极化激元由于其潜在的光-物质耦合而产生的多用途特性而获得了越来越多的关注,并使其成为新的光子应用的潜在候选者。我们通过研究自组装的四聚苯氧枝化苝酰亚胺(PBI)分子的横向排列j聚集体薄膜,在银表面上以螺旋方式排列三股滑动堆叠,从而推进了这一概念。由于均匀排列的偶极矩与下面薄银层的表面等离子体之间的相互作用,1.94 eV的激子态演变为吸收和发射的色散,两者都具有明显的各向异性。由跃迁偶极矩μ - l2和表面等离子体波矢量k - l2 x的标量积定义的耦合常数显示出明显的2倍旋转对称性,其值几乎在0到29.5 meV之间。角依赖吸收和光致发光(PL)的互补时依赖密度泛函理论(TD-DFT)计算为激子和等离子体子系统之间的相干能量交换提供了见解。此外,功率相关的PL研究首次证明,耦合激子-等离子激元极化子的扩散长度在纯pbi - j -聚集体中超过单纯的Frenkel态的扩散长度至少1个数量级。我们的研究结果不仅证明了通过空间各向异性光物质相互作用来控制强耦合态光物理特性的可能性,而且揭示了通过混合态能量的定向输运来影响光电器件运行的创新策略。
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来源期刊
ACS Photonics
ACS Photonics NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
11.90
自引率
5.70%
发文量
438
审稿时长
2.3 months
期刊介绍: Published as soon as accepted and summarized in monthly issues, ACS Photonics will publish Research Articles, Letters, Perspectives, and Reviews, to encompass the full scope of published research in this field.
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