Electromechanically Reconfigurable Terahertz Stereo Metasurfaces

Author:

Prakash Saurav12,Pitchappa Prakash3,Agrawal Piyush45,Jani Hariom16,Zhao Yunshan7,Kumar Abhishek45,Thong John7,Linke Jian1,Ariando Ariando12,Singh Ranjan45ORCID,Venkatesan Thirumalai78

Affiliation:

1. Department of Physics National University of Singapore Singapore 117551 Singapore

2. NUS Graduate School for Integrative Science and Engineering National University of Singapore Singapore 117456 Singapore

3. Institute of Microelectronics (IME) Agency for Science, Technology and Research (A*STAR) 2 Fusionopolis Way Singapore 138634 Singapore

4. Division of Physics and Applied Physics School of Physical and Mathematical Sciences Nanyang Technological University 21 Nanyang Link Singapore 637371 Singapore

5. Centre for Disruptive Photonic Technologies The Photonic Institute 50 Nanyang Avenue Singapore 639798 Singapore

6. Clarendon Laboratory Department of Physics University of Oxford Oxford OX13PU UK

7. Department of Electrical and Computer Engineering National University of Singapore Singapore 117583 Singapore

8. Center for Quantum Research and Technology (CQRT) Center of Optimal Materials for Emerging Technologies (COMET) University of Oklahoma Norman OK 73019 USA

Abstract

AbstractDynamic terahertz devices are vital for the next generation of wireless communication, sensing, and non‐destructive imaging technologies. Metasurfaces have emerged as a paradigm‐shifting platform, offering varied functionalities, miniaturization, and simplified fabrication compared to their 3D counterparts. However, the presence of in‐plane mirror symmetry and reduced degree of freedom impose fundamental limitations on achieving advanced chiral response, beamforming, and reconfiguration capabilities. In this work, a platform composed of electrically actuated resonators that can be colossally reconfigured between planar and 3D geometries is demonstrated. To illustrate the platform, metadevices with 3D Split Ring Resonators are fabricated, wherein two counteracting driving forces are combined: i) folding induced by stress mismatch, which enables non‐volatile state design and ii) unfolding triggered by the strain associated with insulator‐to‐metal transition in VO2, which facilitates volatile structural reconfiguration. This large structural reconfiguration space allows for resonance mode switching, widely tunable magnetic and electric polarizabilities, and increased frequency agility. Moreover, the unique properties of VO2, such as the hysteretic nature of its phase transition is harnessed to demonstrate a multi‐state memory. Therefore, these VO2 integrated metadevices are highly attractive for the realization of 6G communication devices such as reconfigurable intelligent surfaces, holographic beam formers, and spatial light modulators.

Publisher

Wiley

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