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Generating scattering dark states through the Fano interference between excitons and an individual silicon nanogroove

机译:通过激子和单个硅纳米槽之间的Fano干涉产生散射暗态

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摘要

Effective interactions between excitons and resonating nanocavities are important for many emerging applications in nanophotonics. Although plasmonic nanocavities are considered promising substitutes for diffraction-limited dielectric microcavities, their practical applications are hindered by large ohmic loss and Joule heating. Other than plasmonic materials, high-refractive-index dielectric nanocavities is a new way to trap light in subwavelength scales. However, studies on the interaction between dielectric nanocavities and excitons are still scarce. Here, for the first time, we demonstrate that the Fano interference between molecular excitons and an individual silicon nanogroove can generate scattering dark modes. By placing J-aggregate excitons into a silicon nanogroove, the leaky magnetic resonant modes filling in the groove can tailor their scattering directivity and reduce the uncoupled radiation decay in a specific direction. This unidirectional ‘dark state’ brings a new approach to tailor the interaction between excitons and nanocavities without large near-field enhancement. By adjusting the resonant modes, the scattering spectra can change from a Fano asymmetric line shape to a significantly suppressed scattering dip. These findings indicate that silicon nanogrooves can provide a platform for integrated on-chip silicon–exciton hybrid optical systems in the future.
机译:激子与共振的纳米腔之间的有效相互作用对于纳米光子学中的许多新兴应用非常重要。尽管等离子纳米腔被认为是衍射受限的介电微腔的有希望的替代品,但它们的实际应用受到大的欧姆损耗和焦耳热的阻碍。除了等离子体材料之外,高折射率介电纳米腔是一种捕获亚波长范围内光的新方法。然而,关于介电纳米腔和激子之间相互作用的研究仍然很少。在这里,我们首次证明分子激子与单个硅纳米槽之间的Fano干扰会产生散射暗模式。通过将J聚集激子置于硅纳米槽中,填充在凹槽中的漏磁谐振模式可以调整其散射方向性,并减少特定方向上未耦合的辐射衰减。这种单向的“暗态”带来了一种新的方法,可以在不进行大的近场增强的情况下定制激子与纳米腔之间的相互作用。通过调整共振模式,散射光谱可以从Fano不对称线形变为明显抑制的散射倾角。这些发现表明,将来硅纳米槽可以为集成的片上硅-激子混合光学系统提供平台。

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