Programmable Electromagnetic Space via Metasurface Clusters
Min Li, Lixiang Meng, Gongxu Dong, Xiaobo Zhou, Lu Song, Puti Yan, Dashuang Liao, Chao Qian, Zuojia Wang, and Hongsheng Chen

TL;DR
This paper presents a novel framework for programming electromagnetic space using cooperative metasurface clusters, enabling precise control over spatial EM fields for advanced communication and computing applications.
Contribution
It introduces a general, scalable method to deterministically program EM environments by mapping volumetric interference onto a virtual network, bridging local metasurfaces with global space.
Findings
Demonstrated programmable collective radiation with meta-emitter
Created metasurface clusters that sculpt angle-resolved illusion spaces
Provided a scalable foundation for reconfigurable EM environments
Abstract
The rapid evolution of next-generation communications and the Internet of Things (IoT) has catalyzed an urgent demand for governing expansive spatial environments as functional electromagnetic (EM) entities. However, deterministically programming such open EM spaces remains a formidable challenge, as current methodologies are largely confined to localized interfaces that lack the collective coordination required to orchestrate unbounded environments. Here, we introduce a general framework for the deterministic programming of EM space via cooperative metasurface clusters, achieved by mapping volumetric field interference landscapes onto a virtual nodal network. By representing excitations and meta-atoms as fully interconnected nodes, we transform intricate non-local interactions into tractable nodal states, enabling the precise quantitative synthesis of spatial scattering. This framework…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Advanced Wireless Communication Technologies · Molecular Communication and Nanonetworks
