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通过共振光学隧穿效应实现古斯-汉欣位移的强烈增强。

Strong enhancement of Goos-Hänchen shift through the resonant optical tunneling effect.

作者信息

Xiang Liujing, Liu Weici, Wei Zhongchao, Meng Hongyun, Liu Hongzhan, Guo Jianping, Zhi Yan, Huang Zhenming, Li Haoxian, Wang Faqiang

出版信息

Opt Express. 2022 Dec 19;30(26):47338-47349. doi: 10.1364/OE.476166.

Abstract

The resonant optical tunneling effect (ROTE) originates from the frustrated total reflection effect because unique transmission characteristics are used to study high-sensitivity sensors. In this study, we theoretically demonstrated that choosing a suitable transmission gap made it possible for the ROTE structure based on hexagonal boron nitride and graphene to obtain a large Goos-Hänchen shift as high as tens of thousands of times the incident wavelength at a specific incident angle. The amplitude of the Goos-Hänchen shift was found to be sensitive to the central layer thickness but was also modulated by the tunneling gap on both sides. In addition, adjusting the chemical potential and relaxation time of the graphene sheets could alter the Goos-Hänchen shift. Our work provides a new way to explore the Goos-Hänchen effect and opens the possibility for the application of high-precision measurement technology based on the ROTE.

摘要

共振光学隧穿效应(ROTE)源于受挫全反射效应,因其独特的传输特性被用于研究高灵敏度传感器。在本研究中,我们从理论上证明,选择合适的传输间隙可使基于六方氮化硼和石墨烯的ROTE结构在特定入射角下获得高达入射波长数万倍的大古斯-汉欣位移。研究发现,古斯-汉欣位移的幅度对中心层厚度敏感,但也受到两侧隧穿间隙的调制。此外,调整石墨烯片层的化学势和弛豫时间可改变古斯-汉欣位移。我们的工作为探索古斯-汉欣效应提供了一种新方法,并为基于ROTE的高精度测量技术的应用开辟了可能性。

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