Luk K M, Zhou S F, Li Y J, Wu F, Ng K B, Chan C H, Pang S W
Department of Electronic Engineering, City University of Hong Kong, Hong Kong, Hong Kong.
Center for Biosystems, Neuroscience, and Nanotechnology, City University of Hong Kong, Hong Kong, Hong Kong.
Sci Rep. 2017 Apr 28;7(1):1268. doi: 10.1038/s41598-017-01276-4.
While terahertz communications are considered to be the future solutions for the increasing demands on bandwidth, terahertz equivalents of radio frequency front-end components have not been realized. It remains challenging to achieve wideband, low profile antenna arrays with highly directive beams of radiation. Here, based on the complementary antenna approach, a wideband 2 × 2 cavity-backed slot antenna array with a corrugated surface is proposed. The approach is based on a unidirectional antenna with a cardiac radiation pattern and stable frequency characteristics that is achieved by integrating a series-resonant electric dipole with a parallel-resonant magnetic dipole. In this design, the slots work as magnetic dipoles while the corrugated surface radiates as an array of electric dipoles. The proposed antenna is realized at 1 THz operating frequency by stacking multiple metallized layers using the microfabrication technology. S-parameter measurements of this terahertz low-profile metallic antenna array demonstrate high efficiency at terahertz frequencies. Fractional bandwidth and gain are measured to be 26% and 14 dBi which are consistent with the simulated results. The proposed antenna can be used as the building block for larger antenna arrays with more directive beams, paving the way to develop high gain low-profile antennas for future communication needs.
虽然太赫兹通信被认为是满足不断增长的带宽需求的未来解决方案,但射频前端组件的太赫兹等效物尚未实现。实现具有高定向辐射波束的宽带、低剖面天线阵列仍然具有挑战性。在此,基于互补天线方法,提出了一种具有波纹表面的宽带2×2背腔缝隙天线阵列。该方法基于一种具有心形辐射方向图和稳定频率特性的单向天线,它是通过将串联谐振电偶极子与并联谐振磁偶极子集成而实现的。在该设计中,缝隙充当磁偶极子,而波纹表面作为电偶极子阵列进行辐射。所提出的天线通过使用微制造技术堆叠多个金属化层,在1太赫兹的工作频率下实现。对这种太赫兹低剖面金属天线阵列的S参数测量表明,其在太赫兹频率下具有高效率。测得的分数带宽和增益分别为26%和14 dBi,与模拟结果一致。所提出的天线可用作具有更多定向波束的更大天线阵列的构建模块,为开发满足未来通信需求的高增益低剖面天线铺平了道路。