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α-MoO 与极性电介质界面处的杂化双曲表面声子极化激元

Hybridized Hyperbolic Surface Phonon Polaritons at α-MoO and Polar Dielectric Interfaces.

作者信息

Zhang Qing, Ou Qingdong, Hu Guangwei, Liu Jingying, Dai Zhigao, Fuhrer Michael S, Bao Qiaoliang, Qiu Cheng-Wei

机构信息

Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117583, Singapore.

ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), Monash University, Clayton, Victoria 3800, Australia.

出版信息

Nano Lett. 2021 Apr 14;21(7):3112-3119. doi: 10.1021/acs.nanolett.1c00281. Epub 2021 Mar 25.

Abstract

Surface phonon polaritons (SPhPs) in polar dielectrics offer new opportunities for infrared nanophotonics. However, bulk SPhPs inherently propagate isotropically with limited photon confinement, and how to collectively realize ultralarge confinement, in-plane hyperbolicity, and unidirectional propagation remains elusive. Here, we report an approach to solve the aforementioned issues of bulk SPhPs in one go by constructing a heterostructural interface between biaxial van der Waals material (e.g., α-MoO) and bulk polar dielectric (e.g., SiC, AlN, and GaN). Because of anisotropy-oriented mode couplings, the hybridized SPhPs with a large confinement factor (>100) show in-plane hyperbolicity that has been switched to the orthogonal direction as compared to that in natural α-MoO. More interestingly, this proof of concept allows steerable and unidirectional polariton excitation by suspending α-MoO on patterned SiC air cavities. Our finding exemplifies a generalizable framework to manipulate the flow of nanolight in many other hybrid systems consisting of anisotropic materials and polar dielectrics.

摘要

极性电介质中的表面声子极化激元(SPhPs)为红外纳米光子学带来了新机遇。然而,体相SPhPs本质上各向同性传播,光子限制有限,如何同时实现超大限制、面内双曲性和单向传播仍是未知数。在此,我们报告一种方法,通过在双轴范德华材料(如α-MoO)和体相极性电介质(如SiC、AlN和GaN)之间构建异质结构界面,一次性解决体相SPhPs的上述问题。由于各向异性导向的模式耦合,具有大限制因子(>100)的杂化SPhPs表现出面内双曲性,与天然α-MoO中的相比,其双曲性方向已切换到正交方向。更有趣的是,这一概念验证通过将α-MoO悬浮在图案化的SiC空气腔上,实现了可控且单向的极化激元激发。我们的发现例证了一个可推广的框架,用于在许多由各向异性材料和极性电介质组成的其他混合系统中操控纳米光的流动。

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