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具有等离子体相变材料InSbTe的可调谐双曲极化激元。

Tunable hyperbolic polaritons with plasmonic phase-change material InSbTe.

作者信息

Lu Dunzhu, Zeng Ying, Yan Qizhi, Chen Qiyu, Ma Weiliang, Luo Xiao, Xu Ming, Yang Xiaosheng, Li Peining

机构信息

Wuhan National Laboratory for Optoelectronics and School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan 430074, China.

Optics Valley Laboratory, Hubei 430074, China.

出版信息

Nanophotonics. 2024 Feb 13;13(6):937-944. doi: 10.1515/nanoph-2023-0911. eCollection 2024 Mar.

Abstract

Hyperbolic polaritons that originate from the extreme optical anisotropy in van der Waals (vdW) crystals have gained much attention for their potential in controlling nanolight. For practical use, there has been a strong interest to develop various manipulation strategies to customize the propagation of hyperbolic polaritons on a deeply sub-diffractional scale. In this regard, phase-change materials (PCMs) that possess two phases with different refractive indices offer suitably a tunable dielectric environment. Here, we report on the tuning of hyperbolic phonon polaritons in natural vdW crystals, hexagonal boron nitride (hBN), and alpha-phase molybdenum trioxide (α-MoO), using the plasmonic phase-change material InSbTe (IST). Unlike conventional PCMs whose both phases are dielectric, IST features a metallic crystalline phase that is stable at room temperature. The coupling between polaritons with their mirror charges in the underneath crystalline IST triggers an even stronger field confinement for polaritons. Moreover, benefited from the metallicity of laser-writable crystalline IST, we show an all-optical material platform in which crystalline IST boundaries efficiently excite and focus hyperbolic phonon polaritons in α-MoO. Our experiments highlight the possibility to obtain new degrees of freedom in polariton engineering with plasmonic PCMs, thereby expanding the toolkit of tunable nanophotonics with flexible, on-demand fabrication and reconfiguration capabilities.

摘要

源自范德华(vdW)晶体中极端光学各向异性的双曲线极化激元,因其在控制纳米光方面的潜力而备受关注。为了实际应用,人们对开发各种操纵策略以在深度亚衍射尺度上定制双曲线极化激元的传播有着浓厚兴趣。在这方面,具有两种不同折射率相的相变材料(PCM)提供了合适的可调谐介电环境。在此,我们报告了利用等离子体相变材料锑铟碲(IST)对天然vdW晶体六方氮化硼(hBN)和α相三氧化钼(α-MoO₃)中的双曲线声子极化激元进行调谐。与两个相均为电介质的传统PCM不同,IST具有在室温下稳定的金属晶相。极化激元与其在下方晶态IST中的镜像电荷之间的耦合,会引发对极化激元更强的场限制。此外,受益于可激光写入的晶态IST的金属性,我们展示了一个全光材料平台,其中晶态IST边界能有效地激发和聚焦α-MoO₃中的双曲线声子极化激元。我们的实验突出了利用等离子体PCM在极化激元工程中获得新自由度的可能性,从而通过灵活的按需制造和重新配置能力扩展了可调谐纳米光子学的工具集。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dfbb/11501199/9e63d00ddb66/j_nanoph-2023-0911_fig_001.jpg

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