Chen Hongting, Zhang Zhaojian, Zhang Xiao, Han Yunxin, Zhou Zigang, Yang Junbo
College of Sciences, Southwest University of Science and Technology, Mianyang 621010, China.
College of Sciences, National University of Defense Technology, Changsha 410073, China.
Nanomaterials (Basel). 2022 Sep 21;12(19):3273. doi: 10.3390/nano12193273.
In this paper, we design a multifunctional micro-nano device with a hybrid metamaterial-waveguide system, which leads to a triple plasmon-induced transparency (PIT). The formation mechanisms of the three transparent peaks have their own unique characteristics. First, PIT-I can be switched into the BIC (Friedrich-Wintge bound state in continuum), and the quality factors (Q-factors) of the transparency window of PIT-I are increased during the process. Second, PIT-II comes from near-field coupling between two bright modes. Third, PIT-III is generated by the near-field coupling between a low-Q broadband bright mode and a high-Q narrowband guide mode, which also has a high-Q transparent window due to the guide mode. The triple-PIT described above can be dynamically tuned by the gate voltage of the graphene, particularly for the dynamic tuning of the Q values of PIT-I and PIT-III. Based on the high Q value of the transparent window, our proposed structure can be used for highly sensitive refractive index sensors or devices with prominent slow light effects.
在本文中,我们设计了一种具有混合超材料 - 波导系统的多功能微纳器件,该系统可实现三重表面等离激元诱导透明(PIT)。三个透明峰的形成机制各有其独特特性。首先,PIT - I可转变为连续统中的弗里德里希 - 温特格束缚态(BIC),在此过程中PIT - I透明窗口的品质因数(Q值)会增加。其次,PIT - II源于两个亮模之间的近场耦合。第三,PIT - III由低Q宽带亮模与高Q窄带导模之间的近场耦合产生,由于导模的存在,其也具有高Q透明窗口。上述三重PIT可通过石墨烯的栅极电压进行动态调谐,特别是对于PIT - I和PIT - III的Q值的动态调谐。基于透明窗口的高Q值,我们提出的结构可用于高灵敏度折射率传感器或具有显著慢光效应的器件。