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Very-large-scale reconfigurable intelligent surfaces for dynamic control of terahertz and millimeter waves

Yury Malevich, Said Ergoktas, Gokhan Bakan, Pietro Steiner, Coskun Kocabas

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Abstract

Unlocking the potential of terahertz (THz) and millimeter (mm) waves for next generation communications and imaging applications requires reconfigurable intelligent surfaces (RIS) with programmable elements that can manipulate the waves in real-time. Realization of this technology has been hindered by the lack of efficient THz electro-optical materials and scalable THz semiconductor platform. Here, by merging graphene-based THz modulators and the thin-film transistor (TFT) technology, we demonstrate very-large-scale (>300000 pixels) spatial light modulator with individually addressable subwavelength pixels. We demonstrate electronically programmable reflection and transmission patterns of THz light over a large area with unprecedent levels of uniformity and reproducibility. To highlight the potential of these devices, we demonstrate a single pixel mm-wave camera capable of imaging metallic objects. Furthermore, we demonstrate dynamic beam steering with reconfigurable direction pattern. We anticipate that these results will provide realistic pathways to structure THz waves for applications in non-invasive THz imaging and next generation THz communications.

Original languageEnglish
Article number2907
JournalNature Communications
Volume16
Issue number1
Early online date25 Mar 2025
DOIs
Publication statusPublished - 31 Dec 2025

Data Availability Statement

All relevant data discussed in the main text is available at Zenodo.

Acknowledgements

We thank Prof. Askin Kocabas for the help of the electromagnetic simulations.

Funding

This research is supported by the Defense Science and Technology Laboratory (DSTLX\u22121000135951) and UKRI EP/X027643/1 (ERC PoC grant). We thank Prof. Askin Kocabas for the help of the electromagnetic simulations.

FundersFunder number
Defence Science and Technology Laboratory
European Research Council
DSTLX1000135951
UK Research & InnovationEP/X027643/1

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