论文标题
通过分层金属/绝缘体双纳米腔的谐振隧道对Epsilon-Near-Zero模式的杂交
Hybridization of Epsilon-Near-Zero Modes via Resonant Tunneling in Layered Metal/Insulator Double Nanocavities
论文作者
论文摘要
在附近,多个纳米腔之间的耦合导致其模式的杂交。堆叠的金属/绝缘子/金属(MIM)纳米腔构成了一种高度且非常有趣的模型系统,可以研究和设计这种模式耦合,因为它们可以通过无光刻的制造方法来实现,并对光学和几何参数进行了良好的控制。此类MIM腔的共振模式是Epsilon-Near-Zero(ENZ)共振,它吸引了非线性光体物理和各种应用。在这里,我们研究了MIMIM纳米腔中ENZ共振的杂交,从可见的光谱范围内获得了非常大的拆分,达到0.477 eV,Q因子40的Q因子,以及通过调整介电和金属层的厚度的谐振波长和模式线宽的良好控制。将MIMIM结构分析为双量子井系统的半古典方法,可以得出ENZ共振的精确分析分散关系,从而与数值模拟和实验达到了完美的一致性。有趣的是,在对称Mimim腔中分裂的不对称性并未反映在耦合振荡器的经典模型中,这可能与两个腔偶联的量子机械隧道直接相关。将腔共振解释为共振的隧道模式,可以阐明无需动量匹配技术而激发的。高质量ENZ共振的广泛可调节性以及它们强大的耦合效率使这种Mimim腔成为探索光结合相互作用的理想平台,例如,通过在介电层中的量子发射器整合。
The coupling between multiple nanocavities in close vicinity leads to hybridization of their modes. Stacked Metal/Insulator/Metal (MIM) nanocavities constitute a highly versatile and very interesting model system to study and engineer such mode coupling, since they can be realized by lithography-free fabrication methods with fine control on the optical and geometrical parameters. The resonant modes of such MIM cavities are epsilon-near-zero (ENZ) resonances, which are appealing for non-linear photophysics and a variety of applications. Here we study the hybridization of ENZ resonances in MIMIM nanocavities, obtaining a very large mode splitting reaching 0.477 eV, Q factors of the order of 40 in the visible spectral range, and fine control on the resonance wavelength and mode linewidth by tuning the thickness of the dielectric and metallic layers. A semi-classical approach that analyses the MIMIM structure as a double quantum well system allows to derive the exact analytical dispersion relation of the ENZ resonances, achieving perfect agreement with numerical simulations and experiments. Interestingly, the asymmetry of the mode splitting in a symmetric MIMIM cavity is not reflected in the classical model of coupled oscillators, which can be directly related to quantum mechanical tunneling for the coupling of the two cavities. Interpreting the cavity resonances as resonant tunneling modes elucidates that can be excited without momentum matching techniques. The broad tunability of high-quality ENZ resonances together with their strong coupling efficiency makes such MIMIM cavities an ideal platform for exploring light-matter interaction, for example, by integration of quantum emitters in the dielectric layers.