Department of Photonics and Advanced Optoelectronic Technology Center, National Cheng Kung University, Tainan, 70101, Taiwan.
Research Center for Applied Sciences, Academia Sinica, Taipei, 115, Taiwan.
Sci Rep. 2017 Jul 25;7(1):6443. doi: 10.1038/s41598-017-06839-z.
In this work, the terahertz (THz) Smith-Purcell radiations (SPRs) for the relativistic electron bunch passing over an indium antimonide (InSb)-based substrate with a subwavelength grating under various temperatures of substrate are investigated by FDTD simulations and theoretical analyses. The explored SPR is locked and enhanced at a certain emission wavelength with the emission angle still following the wavelength-angle relation of the traditional SPR. This wavelength agrees with the (vacuum) wavelength of surface plasmons (SPs) at the air-InSb interface excited by the electron bunch. The enhancement of SPR at this wavelength is attributed to the energy from electron concentrated in the excited SPs and then transformed into radiation via the SPR mechanism. When the temperature of InSb increases, the emission wavelength of the enhanced SPR decreases along with the emission angles increasing gradually. This work demonstrates that the emission wavelength and angle of the enhanced SPR from the InSb grating can be manipulated by the temperature of InSb. The temperature tunability of SP-enhanced SPR has potential applications in the fields of optical beam steering and metamaterial light source.
在这项工作中,通过 FDTD 模拟和理论分析研究了在不同衬底温度下,相对论电子束在具有亚波长光栅的锑化铟(InSb)基衬底上掠过的太赫兹(THz)史密斯-珀塞尔辐射(SPRs)。所探索的 SPR 在特定发射波长处被锁定和增强,而发射角仍然遵循传统 SPR 的波长-角关系。该波长与由电子束激发的空气-InSb 界面处表面等离子体(SPs)的(真空)波长一致。该波长处 SPR 的增强归因于电子集中在激发的 SPs 中的能量,然后通过 SPR 机制转化为辐射。当 InSb 的温度升高时,增强的 SPR 的发射波长随发射角的逐渐增大而减小。这项工作表明,通过 InSb 的温度可以控制来自 InSb 光栅的增强 SPR 的发射波长和角度。SP 增强 SPR 的温度可调谐性在光束转向和超材料光源等领域具有潜在应用。