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采用宽带时间编码超颖芯片调制器的高阶直接调制太赫兹通信

High-order direct modulation terahertz communications with a wideband time-coding metachip modulator.

作者信息

Wang Lan, Dai Jun Yan, Ding Ke Seng, Zeng Hong Xin, Cheng Qiang, Yang Zi Qiang, Zhang Ya Xin, Cui Tie Jun

机构信息

School of Physics, University of Electronic Science and Technology of China, Chengdu, China.

Zhangjiang Laboratory, Shanghai, China.

出版信息

Sci Adv. 2024 Nov 22;10(47):eadq8693. doi: 10.1126/sciadv.adq8693.

Abstract

Terahertz communication technology based on on-off keying (OOK) direct modulation is vital for sixth-generation communication systems, especially in short-distance and high-rate applications. However, low-order OOK modulation often leads to suboptimal anti-interference capabilities and a heightened demodulation threshold. Here, we propose a high-order direct modulation terahertz communication framework using a wideband time-coding metachip modulator. The modulator leverages the electromagnetic resonance properties within the metaunit structure, with control enabled by gallium arsenide Schottky diodes. By manipulating the timing of voltage pulses applied to these diodes, the equivalent electromagnetic resonance distributions can be precisely regulated in the time domain. This enables independent and accurate control over the amplitude and phase of terahertz harmonics. Leveraging this technique, three high-order modulation schemes-quadrature phase-shift keying, 16-phase-shift keying, and 16-quadrature amplitude modulation- are achieved in a direct modulation and direct detection system, demonstrating the real-time image transmission. The proposed method offers an important way to develop integrated and low-complexity terahertz wireless communication systems.

摘要

基于开关键控(OOK)直接调制的太赫兹通信技术对于第六代通信系统至关重要,特别是在短距离和高速率应用中。然而,低阶OOK调制往往导致抗干扰能力欠佳以及解调阈值升高。在此,我们提出一种使用宽带时间编码超芯片调制器的高阶直接调制太赫兹通信框架。该调制器利用超单元结构内的电磁共振特性,并由砷化镓肖特基二极管实现控制。通过操纵施加到这些二极管的电压脉冲的定时,可以在时域中精确调节等效电磁共振分布。这使得能够独立且精确地控制太赫兹谐波的幅度和相位。利用该技术,在直接调制和直接检测系统中实现了三种高阶调制方案——正交相移键控、16相移键控和16正交幅度调制,展示了实时图像传输。所提出的方法为开发集成且低复杂度的太赫兹无线通信系统提供了一条重要途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53e5/11801051/24df31e162c0/sciadv.adq8693-f1.jpg

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