Rezaei Mir Hamid, Shiri Mehrdad
Opt Express. 2021 May 24;29(11):16299-16311. doi: 10.1364/OE.425599.
The exceptional tunable waveguiding characteristics of graphene surface plasmons have remained unrivaled since it has inspired many electro-optical (EO) devices in terahertz (THz) and mid-infrared (MIR) photonic circuits. We propose and numerically investigate a low-loss, highly extinctive resonant EO modulator based on a suspended graphene plasmonic waveguide. Unlike other resonance-based modulators, the input power has negligible interaction with lossy resonance cavity in on-state, remarkably reducing the losses. Achieving the insertion loss (IL) of 1.3 dB and the extinction ratio (ER) of 22 dB within a footprint less than 3 µm substantiates the superiority of the proposed structure. The charge transport simulations are first conducted to calculate the steady-state charge distribution. The three-dimensional finite-difference time-domain (3D-FDTD) method is utilized to monitor the guided wave propagation and modulation properties. We show that the transmission spectrum is highly dependent upon geometric parameters of the structure, and the modulator can be effectively tuned to operate at the desired wavelength by applying a suitable gate voltage. Simulation results show the modulation bandwidth of 71 GHz corresponding to the total capacitance of 4.8 fF within the active area. The novel EO modulator structure has shown great potentiality and flexibility to find other applications in MIR and THz integrated circuits like controllable notch filters and switches.
自从石墨烯表面等离激元独特的可调谐波导特性激发了太赫兹(THz)和中红外(MIR)光子电路中的许多电光(EO)器件以来,一直无人能及。我们提出并数值研究了一种基于悬浮石墨烯等离子体波导的低损耗、高消光比的谐振电光调制器。与其他基于共振的调制器不同,输入功率在导通状态下与有损耗的共振腔相互作用可忽略不计,显著降低了损耗。在小于3 µm的占地面积内实现了1.3 dB的插入损耗(IL)和22 dB的消光比(ER),证实了所提出结构的优越性。首先进行电荷输运模拟以计算稳态电荷分布。利用三维时域有限差分(3D-FDTD)方法监测导波传播和调制特性。我们表明,传输光谱高度依赖于结构的几何参数,并且通过施加合适的栅极电压,可以有效地调节调制器使其在所需波长下工作。仿真结果表明,对应于有源区内4.8 fF的总电容,调制带宽为71 GHz。这种新型电光调制器结构在中红外和太赫兹集成电路中寻找其他应用(如可控陷波滤波器和开关)方面显示出巨大的潜力和灵活性。