(Peer-Reviewed) Pixel-controlled programmable metasurface as phase-type spatial terahertz modulator
Guibin Li ¹, Guanyi Li ², Zehao He ¹, Xinke Wang ¹, Peter J. Klar ³, He Ma ², Yan Zhang ¹
¹ Department of Physics, Beijing Key Lab for Metamaterials and Devices, Key Laboratory for Terahertz Optoelectronics, Ministry of Education, Beijing Advanced Innovation Center for Imaging Theory and Technology, Capital Normal University, Beijing 100048, China
中国 北京 首都师范大学物理系 北京成像理论与技术高精尖创新中心 超材料与器件北京市重点实验室 太赫兹光电子学教育部重点实验室
² Institute of Information Photonics Technology, School of Physics and Optoelectronic Engineering, Beijing University of Technology, Beijing 100124, China
中国 北京 北京工业大学物理与光电工程学院信息与光电研究所
³ Institute of Experimental Physics I, Justus Liebig University, Heinrich-Buff-Ring 16, Giessen 35392, Germany
Opto-Electronic Advances, 2026-09-15
Abstract
Reconfigurable intelligent surfaces (RISs) transcend the passive response limitations of conventional metasurface resonators by integrating active materials into metasurface elements, enabling a more flexible control of electromagnetic wave properties. However, RISs devices operating in the terahertz (THz) regime continue to face significant challenges in structural design and multifunctional implementation, particularly regarding optically-addressed THz RISs devices with independent pixel-level encoding, which remain experimentally underexplored.
Here, we propose a compact and relatively efficient transmissive programmable metasurface device functioning as a phase-type spatial THz modulator, which enables separate encoding of each pixel within a 50×50 resolution array, thereby achieving dynamic generation and reconfiguration of THz wavefronts. The spatial modulation of the pump pulse intensity locally activates the vanadium dioxide integrated meta-atoms across the metasurface and, thus, defines the specifically designed phase modulation of the cross-polarized transmission. Dynamic wavefront manipulation is then realized by switching the spatial intensity distribution of the pump pulse.
Proof-of-concept experiments demonstrate that the same programmable metasurface can perform three distinct functionalities—zoom lens, tunable vortex beam generator, and dynamic hologram. The amplitude conversion efficiency of the device was experimentally measured to be 27%. The programmable scheme demonstrated here paves the way toward miniaturized, integrated, and multifunctional THz optical devices.
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