太赫兹辐射
光子晶体
漏波天线
无线
传输(电信)
电磁频谱
光电子学
天线(收音机)
材料科学
光子学
波导管
光学
计算机科学
信号(编程语言)
电子工程
微带天线
物理
电信
工程类
程序设计语言
作者
Hichem Guerboukha,Masoud Sakaki,Rabi Shrestha,Jingwen Li,Johanna Kölbel,Niels Benson,Daniel M. Mittleman
标识
DOI:10.1002/admt.202300698
摘要
Abstract Wireless systems are facing increasing pressure due to the growing demand for data transmission. One potential solution to this problem is to shift communication frequencies toward the terahertz (THz) spectrum. However, this requires the development of new components that can efficiently process signals at these high frequencies and transmit them via highly directional beams. In this study, a novel approach is proposed to achieving efficient THz signal processing by combining two existing technologies: photonic crystals and leaky‐wave antennas. Incorporating a 2D photonic crystal inside a leaky‐wave waveguide allows to manipulate the wave vector of the guided wave in unique ways, which in turn impacts the far‐field radiation pattern emitted through the leaky‐wave aperture. The device fabrication uses 3D printing of alumina and allows for convenient and scalable manufacturing. Through numerical simulations and experiments, free‐space data transmission at rates of few hundred Mbps at a carrier frequency of 101.2 GHz is demonstrated. The findings illustrate the feasibility of photonic crystal‐based leaky‐wave antennas and lay the groundwork for the development of compact and high‐performance components for THz wireless communication systems.
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