Feng Xiaodong, Gong Sen, Zhong Renbin, Zhao Tao, Hu Min, Zhang Chao, Liu Shenggang
Opt Lett. 2018 Mar 1;43(5):1187-1190. doi: 10.1364/OL.43.001187.
In this Letter, the enhanced and directional radiation in a wide terahertz (THz) frequency range in a graphene hyperbolic medium excited by an electric dipole is presented. The numerical simulations and theoretical analyses indicate that the enhanced radiation comes from the strong surface plasmon couplings in the graphene hyperbolic medium, consisting of alternative graphene and dielectric substrate layers. The simulation results also show that the peak power flow of the enhanced THz radiation in the graphene hyperbolic medium is dramatically enhanced by more than 1 order of magnitude over that in a general medium within a certain distance from the dipole, and the electromagnetic fields are strongly concentrated in a narrow angle. Also, the radiation fields can be manipulated, and the fields' angular distributions can be tuned by adjusting the dielectric permittivity and thickness of the substrates, and the chemical potential of graphene. Accordingly, it provides a good opportunity for developing miniature, integratable, high-power-density, and tunable radiation sources in the THz band at room temperature.
在本信函中,展示了由电偶极子激发的石墨烯双曲线介质在宽太赫兹(THz)频率范围内增强且定向的辐射。数值模拟和理论分析表明,增强辐射源于石墨烯双曲线介质中的强表面等离子体耦合,该介质由交替的石墨烯和介电基底层组成。模拟结果还表明,在距偶极子一定距离内,石墨烯双曲线介质中增强的太赫兹辐射的峰值功率流比普通介质中的显著增强超过1个数量级,并且电磁场强烈集中在一个窄角度内。此外,通过调整基片的介电常数和厚度以及石墨烯的化学势,可以操纵辐射场并调整场的角分布。因此,这为在室温下开发太赫兹频段的微型、可集成、高功率密度和可调谐辐射源提供了一个良好的机会。