论文标题
通过硝化双曲线北极子的多模式限制,高质量的纳米腔
High quality nanocavities through multimodal confinement of hyperbolic polaritons in hexagonal boron nitride
论文作者
论文摘要
传统的光腔支持模式,这些模式由于无法从空腔中泄漏而受到限制。连续(BIC)腔中的结合状态是一种非常规的替代方案,可以在该范围内泄漏,但受到多模式破坏性干扰的限制。 BIC是一种一般波浪现象,特别感兴趣,但是在纳米级从未证明BIC和多模式干扰。在这里,我们基于BIC样的多模式干扰来证明第一个纳米光腔。这种深层次波长光的新型限制机制显示了几种禁闭指标的数量级改善。具体而言,我们获得低于100x100x3nm^3以下的空腔量,质量因素约为100,而极端情况有23x23x3nm^3量或质量因子高于400的质量因素。对于我们方法的关键是使用原始的晶体透性外观分散介质(HYM),可以支持较大的损失较低损失的巨大动量激发。 HYM中出现的其他模式使HYM腔变得复杂。通常,这些是泄漏的其他渠道,可降低腔功能性能。但是,在我们的实验中,我们发现了类似BIC的腔体限制增强效应,这与HYM激发的射线样性质密切相关。实际上,在没有高阶模式的情况下,我们的空腔的质量因素超过了最大值。在我们的工作中,赞美诗与BIC的联盟产生了一种新颖的限制光线的方式,并有望在利用强烈的光学限制的地方,从超强的光 - 亮点相互作用到中IR非线性光学和多种感测应用。
A conventional optical cavity supports modes which are confined because they are unable to leak out of the cavity. Bound state in continuum (BIC) cavities are an unconventional alternative, where light can leak out, but is confined by multimodal destructive interference. BICs are a general wave phenomenon, of particular interest to optics, but BICs and multimodal interference have never been demonstrated at the nanoscale. Here, we demonstrate the first nanophotonic cavities based on BIC-like multimodal interference. This novel confinement mechanism for deep sub-wavelength light shows orders of magnitude improvement in several confinement metrics. Specifically, we obtain cavity volumes below 100x100x3nm^3 with quality factors about 100, with extreme cases having 23x23x3nm^3 volumes or quality factors above 400. Key to our approach, is the use of pristine crystalline hyperbolic dispersion media (HyM) which can support large momentum excitations with relatively low losses. Making a HyM cavity is complicated by the additional modes that appear in a HyM. Ordinarily, these serve as additional channels for leakage, reducing cavity performance. But, in our experiments, we find a BIC-like cavity confinement enhancement effect, which is intimately related to the ray-like nature of HyM excitations. In fact, the quality factors of our cavities exceed the maximum that is possible in the absence of higher order modes. The alliance of HyM with BICs in our work yields a radically novel way to confine light and is expected to have far reaching consequences wherever strong optical confinement is utilized, from ultra-strong light-matter interactions, to mid-IR nonlinear optics and a range of sensing applications.