太赫兹微波光子学中的等离子体

M. Burla, C. Hoessbacher, W. Heni, C. Haffner, Y. Salamin, Y. Fedoryshyn, Tatsuhiko Watanabe, H. Massler, T. Blatter, Y. Horst, D. Elder, L. Dalton, J. Leuthold
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摘要

太赫兹频率提供了巨大的带宽,可以解决当前下一代无线通信的速度瓶颈。最近的报告显示,次太赫兹链路提供数百Gbit/s的容量,最终接近最先进的光传输通道。尽管如此,太赫兹范围内信号的产生、传输、检测和处理远非一项微不足道的任务。尽管最近集成技术的发展开始表明,芯片级太赫兹技术可以逐渐缩小所谓的“太赫兹差距”,但要实现功能系统,特别是在效率方面,还有很多工作要做。光子学可以提供帮助,由于其极低的损耗和宽的带宽。然而,阻碍太赫兹技术部署的一个特别关键的方面是,最先进的光子设备通常不能提供足够的电光带宽来处理太赫兹信号。等离子体,通过聚焦亚波长尺度的电磁表面波,可以在这一探索中发挥关键作用,因为它最终能够实现电光器件,如调制器和探测器,显示足够的紧凑性和速度,以达到太赫兹范围。本文概述了基于等离子体的调制器的最新成就,这些调制器显示了速度、效率和线性的特性,从而能够高性能地访问这个非常理想的频率范围。
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Plasmonics for microwave photonics in the THz range
THz frequencies offer enormous amounts of bandwidth, which could solve the current speed bottleneck for next-generation wireless communications. Recent reports show sub-THz links offering capacities of hundreds of Gbit/s, finally approaching those of state-of-the-art optical transmission channels. Non-etheless, generation, transport, detection and processing of signals in the THz range is far from being a trivial task. Even though the recent evolution of integrated technology is starting to indicate that chip-scale THz technology could gradually close the so-called “THz gap,” much work still needs to be done to enable functional systems, in particular in terms of efficiency. Photonics can be of help, thanks to its extremely low loss and broad bandwidth. Yet, a particularly critical aspect hindering the deployment of THz technology is that state-of-the-art photonics devices generally do not offer sufficient electro-optical bandwidth to process THz signals. Plasmonics, by focusing electromagnetic surface waves at sub-wavelength scales, can play a key role in this quest, as it finally enables the realization of electro-optical devices such as modulators and detectors displaying sufficient compactness and speeds to reach the THz range. This paper overviews recent achievements on plasmonic-based modulators displaying characteristics of speed, efficiency and linearity that enable high-performance access to this much desired frequency range.
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