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Surface-Plasmon Waveguides as Transmission Lines for Optical Signal and Electrical Bias

机译:表面等离子体波导作为光信号和电偏置的传输线

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摘要

Using metal plasmonic waveguides as transmission lines for optical signals and an electrical bias is shown to be feasible in Si-based devices with a separation gap formed between the waveguide and Au/Si Schottky-barrier diode (SBD). Optical signal transmission is confirmed by calculating the radiation pattern from the waveguide edge and measuring the photocurrent detected at the SBD. From a finite-difference time-domain simulation, the radiation pattern from the waveguide edge is represented as an interference fringe. The simulation result for the separation-length dependence of the detected photocurrent at the SBD corresponds well with experiment. Moreover, the intensity-modulated optical signal at 10 MHz is also observed across the 3-μm-length separation gap. The electrical bias separation is confirmed by applying a bias voltage between the waveguide and the Si substrate and generating a bias current through the waveguide. The detected photocurrent at the SBD barely increased with changing bias voltage and was clearly smaller than that under changes in optical intensity. In addition, electrical current produced no influence on the surface-plasmon signal on the waveguide.
机译:使用金属等离子体激元波导作为光信号的传输线和电偏压在基于Si的器件中具有可行性,在波导和Au / Si肖特基势垒二极管(SBD)之间形成分隔间隙。通过计算来自波导边缘的辐射图并测量在SBD处检测到的光电流,可以确认光信号的传输。通过时域有限差分仿真,来自波导边缘的辐射方向图表示为干涉条纹。在SBD处检测到的光电流的分离长度依赖性的仿真结果与实验吻合得很好。此外,在3μm长的分离间隙中也观察到了10 MHz的强度调制光信号。通过在波导和Si衬底之间施加偏置电压并产生流过波导的偏置电流来确认电偏置分离。随着偏置电压的变化,在SBD处检测到的光电流几乎没有增加,并且明显小于在光强度变化下的光电流。另外,电流对波导上的表面等离子体信号不产生影响。

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