4.7 Review

Reconfigurable terahertz metamaterials: From fundamental principles to advanced 6G applications

Journal

ISCIENCE
Volume 25, Issue 2, Pages -

Publisher

CELL PRESS
DOI: 10.1016/j.isci.2022.103799

Keywords

-

Funding

  1. RIE Advanced Manufacturing and Engineering (AME) Programmatic Grant Project [A18A5b0056, WBS: R-263-000-D78-305]
  2. NRF Competitive Research Program [CRP15-2015-02 (WBS: R-263-000-C24-281)]
  3. Advanced Research and Technology Innovation Center (ARTIC) Project [WBS: R-261-518-009-720]
  4. Ministry of Education (MOE) [WBS: R-263-000-F18-112]
  5. MOE Tier one Project at NUS, Singapore [WBS: R-263-000-E14-114]

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The Terahertz (THz) electromagnetic spectrum is critical for various 6G applications, but the limited response of naturally existing materials has created a gap. Metamaterials, with their engineered electromagnetic properties, enable the development of THz devices, and their tunability can be achieved using MEMS technologies and tunable materials. Reconfigurable functional THz devices play an important role in filling the THz gap and advancing 6G applications.
Terahertz (THz) electromagnetic spectrum ranging from 0.1THz to 10THz has become critical for sixth generation (6G) applications, such as high-speed communication, fingerprint chemical sensing, non-destructive biosensing, and bioimaging. However, the limited response of naturally existing materials THz waves has induced a gap in the electromagnetic spectrum, where a lack of THz functional devices using natural materials has occurred in this gap. Metamaterials, artificially composed structures that can engineer the electromagnetic properties to manipulate the waves, have enabled the development of many THz devices, known as metadevices. Besides, the tunability of THz metadevices can be achieved by tunable structures using microelectromechanical system (MEMS) technologies, as well as tunable materials including phase change materials (PCMs), electro-optical materials (EOMs), and thermo-optical materials (TOMs). Leveraging various tuning mechanisms together with metamaterials, tremendous research works have demonstrated reconfigurable functional THz devices, playing an important role to fill the THz gap toward the 6G applications. This review introduces reconfigurable metadevices from fundamental principles of metamaterial resonant system to the design mechanisms of functional THz metamaterial devices and their related applications. Moreover, we provide perspectives on the future development of THz photonic devices for state-of-the-art applications.

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