Shen Songchao, Hameed Ahmed M F, Dai Jun
Opt Lett. 2024 Oct 15;49(20):5965-5968. doi: 10.1364/OL.540235.
In this Letter, we report TAMM plasmonic polaritons (TPPs) generated by few-layer MoS with a distributed Bragg reflector (DBR) structure in the terahertz frequency region by utilizing the transfer matrix method (TMM) and finite element method (FEM). By inserting a mono-graphene embedded cavity layer, we realize the graphene-induced mode strong coupling (GCM), which is a strategy of a refractive index sensor by optimizing the cavity layer spacing. By adjusting the chemical potential of graphene, GCM is modulated. μ = 0.1 eV and μ = 0.9 eV are selected as the on-off-state parameters, respectively. The difference in reflectance spectra presents a differential signal and a self-reference operation. The sensitivity of the designed refractive index sensor is 7.8 THz/RIU and a figure of merit (FOM) of 882 RUI can be obtained. The proposed structure in our Letter demonstrates its potential application in high-performance self-reference refractive index sensors.
在本信函中,我们利用转移矩阵法(TMM)和有限元法(FEM),报道了在太赫兹频率区域由具有分布式布拉格反射器(DBR)结构的少层MoS产生的太赫兹表面等离激元极化激元(TPP)。通过插入单石墨烯嵌入腔层,我们实现了石墨烯诱导模式强耦合(GCM),这是一种通过优化腔层间距来实现折射率传感器的策略。通过调节石墨烯的化学势,对GCM进行调制。分别选择μ = 0.1 eV和μ = 0.9 eV作为开-关状态参数。反射光谱的差异呈现出差分信号和自参考操作。所设计的折射率传感器的灵敏度为7.8 THz/RIU,品质因数(FOM)可达882 RUI。我们信函中提出的结构展示了其在高性能自参考折射率传感器中的潜在应用。