Degl'Innocenti Riccardo, Lin Hungyen, Navarro-Cía Miguel
Department of Engineering, University of Lancaster, Bailrigigg, Lancaster LA1 4YW, UK.
School of Physics and Astronomy, University of Birmingham, B15 2TT Birmingham, UK.
Nanophotonics. 2022 Apr 11;11(8):1485-1514. doi: 10.1515/nanoph-2021-0803. eCollection 2022 Mar.
The terahertz (0.1-10 THz) range represents a fast-evolving research and industrial field. The great interest for this portion of the electromagnetic spectrum, which lies between the photonics and the electronics ranges, stems from the unique and disruptive sectors where this radiation finds applications in, such as spectroscopy, quantum electronics, sensing and wireless communications beyond 5G. Engineering the propagation of terahertz light has always proved to be an intrinsically difficult task and for a long time it has been the bottleneck hindering the full exploitation of the terahertz spectrum. Amongst the different approaches that have been proposed so far for terahertz signal manipulation, the implementation of metamaterials has proved to be the most successful one, owing to the relative ease of realisation, high efficiency and spectral versatility. In this review, we present the latest developments in terahertz modulators based on metamaterials, while highlighting a few selected key applications in sensing, wireless communications and quantum electronics, which have particularly benefitted from these developments.
太赫兹(0.1 - 10太赫兹)波段是一个快速发展的研究和工业领域。人们对介于光子学和电子学波段之间的这部分电磁频谱有着浓厚兴趣,这源于该辐射所应用的独特且具有颠覆性的领域,如光谱学、量子电子学、传感以及5G以上的无线通信。事实证明,控制太赫兹光的传播一直是一项本质上很困难的任务,长期以来它一直是阻碍太赫兹频谱充分利用的瓶颈。在目前已提出的用于太赫兹信号操控的不同方法中,超材料的应用已被证明是最成功的,这得益于其相对容易实现、高效率和光谱通用性。在这篇综述中,我们介绍了基于超材料的太赫兹调制器的最新进展,同时重点介绍了传感、无线通信和量子电子学中的一些关键应用,这些应用尤其受益于这些进展。