| Literature DB >> 25919444 |
Yaxin Zhang1, Shen Qiao1, Shixiong Liang2, Zhenhua Wu1, Ziqiang Yang1, Zhihong Feng2, Han Sun1, Yucong Zhou1, Linlin Sun1, Zhi Chen3, Xianbing Zou3, Bo Zhang4, Jianhao Hu3, Shaoqian Li3, Qin Chen5, Ling Li1, Gaiqi Xu1, Yuncheng Zhao1, Shenggang Liu1.
Abstract
The past few decades have witnessed a substantial increase in terahertz (THz) research. Utilizing THz waves to transmit communication and imaging data has created a high demand for phase and amplitude modulation. However, current active THz devices, including modulators and switches, still cannot meet THz system demands. Double-channel heterostructures, an alternative semiconductor system, can support nanoscale two-dimensional electron gases (2DEGs) with high carrier concentration and mobility and provide a new way to develop active THz devices. In this Letter, we present a composite metamaterial structure that combines an equivalent collective dipolar array with a double-channel heterostructure to obtain an effective, ultrafast, and all-electronic grid-controlled THz modulator. Electrical control allows for resonant mode conversion between two different dipolar resonances in the active device, which significantly improves the modulation speed and depth. This THz modulator is the first to achieve a 1 GHz modulation speed and 85% modulation depth during real-time dynamic tests. Moreover, a 1.19 rad phase shift was realized. A wireless free-space-modulation THz communication system based on this external THz modulator was tested using 0.2 Gbps eye patterns. Therefore, this active composite metamaterial modulator provides a basis for the development of effective and ultrafast dynamic devices for THz wireless communication and imaging systems.Entities:
Keywords: Terahertz; composite metamaterial; double-channel heterostructure; external modulator
Year: 2015 PMID: 25919444 DOI: 10.1021/acs.nanolett.5b00869
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189