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Plasmonic modulator based on thin metal semiconductor metal waveguide with gain core

机译:基于带增益芯的薄金属半导体金属波导的等离子调制器

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We focus on plasmonic modulators with a gain core to be implemented as active nanodevices in photonic integrated circuits. In particular, we analyze metal-semiconductor-metal (MSM) waveguides with InGaAsP-based active material layers. A MSM waveguide enables high field localization and therefore high modulation speed. The modulation is achieved by changing the gain of the core that results in different transmittance through the waveguide. Dependences on the waveguide core size and gain values of various active materials are studied. The effective propagation constants in the MSM waveguides are calculated numerically. We optimize the structure by considering thin metal layers. A thin single metal layer supports an asymmetric mode with a high propagation constant. Implementing such layers as the waveguide claddings allows to achieve several times higher effective indices than in the case of a waveguide with thick (>50 nm) metal layers. In turn, the high effective index leads to enhanced modulation speed. We show that a MSM waveguide with the electrical current control of the gain incorporates compactness and deep modulation along with a reasonable level of transmittance.
机译:我们专注于具有增益核心的等离激元调制器,该等离激元调制器将被实现为光子集成电路中的有源纳米器件。特别是,我们使用基于InGaAsP的活性材料层来分析金属-半导体-金属(MSM)波导。 MSM波导可以实现高场定位,因此可以实现高调制速度。通过改变纤芯的增益来实现调制,纤芯的增益会导致通过波导的透射率不同。研究了各种活性材料对波导芯尺寸和增益值的依赖性。 MSM波导中的有效传播常数是通过数值计算的。我们通过考虑薄金属层来优化结构。薄的单金属层支持具有高传播常数的非对称模式。将这样的层用作波导包层可以实现比具有厚(> 50 nm)金属层的波导的有效折射率高几倍的有效折射率。进而,高有效指数导致调制速度提高。我们表明,具有电流控制增益的MSM波导结合了紧凑性和深度调制以及合理的透射率。

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