Zhu Juan-Feng, Du Chao-Hai, Huang Tie-Jun, Bao Lu-Yao, Pan Shi, Liu Pu-Kun
Opt Express. 2019 Sep 2;27(18):26192-26202. doi: 10.1364/OE.27.026192.
A beam-scanning terahertz (THz) radiation mechanism in a free-electron-driven grating system is proposed for THz applications. By loading a period-asynchronous rod array above the grating, the spoof surface plasmon (SSP) originally excited by the electron changes its radiation characteristics owing to the rod-induced Brillouin zone folding effect. The rod array functions as an antenna and converts the SSP into a spatial coherent THz radiation. The radiation frequency and direction can be precisely controlled by the electron energy. The field intensity of the radiation is increased approximately 20 times compared with that of the conventional Smith-Purcell radiation in the same frequency range. In addition, a microwave-band scaling prototype is fabricated and the frequency-controlled radiation is measured. Excellent agreement between the experimental and simulated results is obtained. This study paves the way for the development of on-chip THz sources for advanced communication and detection applications.
提出了一种用于太赫兹(THz)应用的自由电子驱动光栅系统中的光束扫描太赫兹辐射机制。通过在光栅上方加载周期异步棒阵列,原本由电子激发的类表面等离子体(SSP)由于棒引起的布里渊区折叠效应而改变其辐射特性。棒阵列起到天线的作用,将SSP转换为空间相干太赫兹辐射。辐射频率和方向可通过电子能量精确控制。与相同频率范围内的传统史密斯-珀塞尔辐射相比,辐射的场强提高了约20倍。此外,制作了一个微波频段缩放原型并测量了频率可控辐射。实验结果与模拟结果取得了很好的一致性。该研究为用于先进通信和检测应用的片上太赫兹源的开发铺平了道路。