Dong Zhewei, Sun Chen, Si Jiangnan, Deng Xiaoxu
Opt Express. 2017 May 29;25(11):12251-12259. doi: 10.1364/OE.25.012251.
A tunable polarization-independent dual-band plasmonically induced transparency (PIT) device based on metal-graphene nanostructures is proposed theoretically and numerically at mid-infrared frequencies, which is composed of two kinds of center-symmetric metallic nanostructure array with different sizes and element numbers placed on separate graphene interdigitated finger sets, respectively. The coupled Lorentz oscillator model is used to explain the physical mechanism of PIT effect at multiple frequency domains. The finite-difference time-domain (FDTD) solutions are employed to simulate the characteristics of the polarization-independent metal-graphene PIT device, which is consistent with the theoretical analysis. The PIT peaks, obtained at two frequency domains, are separately and dynamically modulated by varying the Fermi energy of corresponding graphene finger set without changing the geometrical parameter of the metallic nanostructure. By the carefully selected element numbers of nanostructure arrays, the resonance strength of the PIT peaks at two frequency domains are nearly close. And the PIT device has identical response to the various polarized incident field due to the center symmetry of the metallic nanostructure, which have advantages in practical applications with no polarization-dependent loss.
理论上和数值上提出了一种基于金属-石墨烯纳米结构的可调谐偏振无关双波段等离子体诱导透明(PIT)器件,该器件工作在中红外频率,由两种不同尺寸和单元数量的中心对称金属纳米结构阵列分别放置在单独的石墨烯叉指电极组上构成。耦合洛伦兹振子模型用于解释多频域下PIT效应的物理机制。采用时域有限差分(FDTD)解来模拟偏振无关的金属-石墨烯PIT器件的特性,这与理论分析一致。通过改变相应石墨烯叉指电极组的费米能量,在两个频域获得的PIT峰被分别动态调制,而不改变金属纳米结构的几何参数。通过精心选择纳米结构阵列的单元数量,两个频域下PIT峰的共振强度几乎接近。并且由于金属纳米结构的中心对称性,该PIT器件对各种偏振入射场具有相同的响应,在实际应用中具有无偏振相关损耗的优势。