论文标题

监测非局部等离子间与电子光谱的强耦合

Monitoring strong coupling in nonlocal plasmonics with electron spectroscopies

论文作者

Zouros, Grigorios P., Kolezas, Georgios D., Mortensen, N. Asger, Tserkezis, Christos

论文摘要

等离子体偏极极化子通过更深入地研究量子光学效应并促进基于Bose-Einstein凝结和极化激光的新型技术,从而为控制纳米级的光结物相互作用提供了令人兴奋的可能性。然而,观察和可视化偏光子是具有挑战性的,传统的光学显微镜技术通常会导致有关等离子体 - 脱离耦合的出现和强度的歧义。电子显微镜提供了一种更强大的方法来研究和验证丛集的性质,但仍受到仪器限制和分辨率的阻碍。因此,简单的理论描述是电子束激发的丛集,对于补充持续的实验努力至关重要。在这里,我们应用了电子损伤和光子发射概率的分析溶液,以评估使用最近采用的电子损失光谱技术或在这种情况下未探索的电子溶液光谱技术研究的等离激元 - 脱落耦合。预见到在等离子响应中考虑量子校正的必要性,我们将这些解决方案扩展在一般非局部流体动力学描述的框架内。作为一个具体示例,我们研究了核壳球形发射机 - 分子杂种,超出了通过流体动力学模型进行筛选的标准局部响应近似值,并且用于非局部阻尼的广义非局部光学响应理论。我们表明,电子显微镜在描述发射器与原本弱激发的光学均值高阶等离子多物的相互作用方面非常强大,当考虑量子信息模型时,这种响应得以生存。

Plasmon-exciton polaritons provide exciting possibilities to control light-matter interactions at the nanoscale by enabling closer investigation of quantum optical effects and facilitating novel technologies based, for instance, on Bose-Einstein condensation and polaritonic lasing. Nevertheless, observing and visualising polaritons is challenging, and traditional optical microscopy techniques often lead to ambiguities regarding the emergence and strength of the plasmon-exciton coupling. Electron microscopy offers a more robust means to study and verify the nature of plexcitons, but is still hindered by instrument limitations and resolution. A simple theoretical description of electron beam-excited plexcitons is therefore vital to complement ongoing experimental efforts. Here we apply analytic solutions for the electron-loss and photon-emission probabilities to evaluate plasmon-exciton coupling studied either with the recently adopted technique of electron energy-loss spectroscopy, or with the so-far unexplored in this context cathodoluminescence spectroscopy. Foreseeing the necessity to account for quantum corrections in the plasmonic response, we extend these solutions within the framework of general nonlocal hydrodynamic descriptions. As a specific example we study core-shell spherical emitter-molecule hybrids, going beyond the standard local-response approximation through the hydrodynamic Drude model for screening and the generalised nonlocal optical response theory for nonlocal damping. We show that electron microscopies are extremely powerful in describing the interaction of emitters with the otherwise weakly excited by optical means higher-order plasmonic multipoles, a response that survives when quantum-informed models are considered.

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