Wu Jingbo, Mayorov Alexander S, Wood Christopher D, Mistry Divyang, Li Lianhe, Muchenje Wilson, Rosamond Mark C, Chen Li, Linfield Edmund H, Davies A Giles, Cunningham John E
School of Electronic and Electrical Engineering, University of Leeds, Woodhouse Lane, Leeds LS2 9JT, United Kingdom.
Sci Rep. 2015 Oct 21;5:15420. doi: 10.1038/srep15420.
Terahertz frequency time-domain spectroscopy employing free-space radiation has frequently been used to probe the elementary excitations of low-dimensional systems. The diffraction limit, however, prevents its use for the in-plane study of individual laterally-defined nanostructures. Here, we demonstrate a planar terahertz frequency plasmonic circuit in which photoconductive material is monolithically integrated with a two-dimensional electron system. Plasmons with a broad spectral range (up to ~ 400 GHz) are excited by injecting picosecond-duration pulses, generated and detected by a photoconductive semiconductor, into a high mobility two-dimensional electron system. Using voltage modulation of a Schottky gate overlying the two-dimensional electron system, we form a tuneable plasmonic cavity, and observe electrostatic manipulation of the plasmon resonances. Our technique offers a direct route to access the picosecond dynamics of confined electron transport in a broad range of lateral nanostructures.
采用自由空间辐射的太赫兹频率时域光谱技术经常被用于探测低维系统的元激发。然而,衍射极限使其无法用于对单个横向定义的纳米结构进行面内研究。在此,我们展示了一种平面太赫兹频率等离子体电路,其中光电导材料与二维电子系统单片集成。通过将由光电导半导体制备并检测的皮秒持续时间脉冲注入到高迁移率二维电子系统中,可激发具有宽光谱范围(高达约400 GHz)的等离子体激元。通过对覆盖二维电子系统的肖特基栅极进行电压调制,我们形成了一个可调谐的等离子体腔,并观察到等离子体共振的静电操纵。我们的技术为获取广泛横向纳米结构中受限电子输运的皮秒动力学提供了一条直接途径。