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用于高 k 波色散控制的绝热渐变双曲超材料。

Adiabatically tapered hyperbolic metamaterials for dispersion control of high-k waves.

机构信息

School of Electrical and Computer Engineering and Birck Nanotechnology Center, Purdue University , West Lafayette, Indiana United States.

出版信息

Nano Lett. 2015 Jan 14;15(1):498-505. doi: 10.1021/nl5038352. Epub 2014 Dec 8.

Abstract

Hyperbolic metamaterials (HMMs) have shown great promise in the optical and quantum communities due to their extremely large, broadband photonic density of states. This feature is a direct consequence of supporting photonic modes with unbounded k-vectors. While these materials support such high-k waves, they are intrinsically confined inside the HMM and cannot propagate into the far-field, rendering them impractical for many applications. Here, we demonstrate how the magnitude of k-vectors can be engineered as the propagating radiation passes through media of differing dispersion relations (including type II HMMs and dielectrics) in the in-plane direction. The total outcoupling efficiency of waves in the in-plane direction is shown to be on average 2 orders of magnitude better than standard out-of-plane outcoupling methods. In addition, the outcoupling can be further enhanced using a proposed tapered HMM waveguide that is fabricated using a shadowed glancing angle deposition technique; thereby proving the feasibility of the proposed device. Applications for this technique include converting high-k waves to low-k waves that can be out-coupled into free-space and creating extremely high-k waves that are quickly quenched. Most importantly, this method of in-plane outcoupling acts as a bridge through which waves can cross between the regimes of low-k waves in classical dielectric materials and the high-k waves in HMMs with strongly reduced reflective losses.

摘要

双曲超材料 (HMMs) 由于其具有非常大的、宽带的光子态密度,在光学和量子领域显示出巨大的应用前景。这一特性是由于支持具有无限大 k-矢量的光子模式。虽然这些材料支持如此高 k 的波,但它们本质上局限在 HMM 内部,无法传播到远场,因此在许多应用中并不实用。在这里,我们展示了如何在平面内方向上通过具有不同色散关系的介质(包括 II 型 HMM 和电介质)来控制 k-矢量的大小,这些介质可以引导传播的辐射。平面内方向上的波的总外耦合效率比标准的平面外外耦合方法平均高出 2 个数量级。此外,通过使用阴影掠入射沉积技术制造的提出的锥形 HMM 波导,可以进一步增强外耦合;从而证明了所提出的器件的可行性。该技术的应用包括将高 k 波转换为可以外耦合到自由空间的低 k 波,并产生快速衰减的极高 k 波。最重要的是,这种平面外耦合方法充当了一个桥梁,通过它可以在经典介电材料中的低 k 波和具有大大降低的反射损耗的 HMM 中的高 k 波之间进行波的传输。

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