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March 21, 2026Nature Communications2 citationsOpen Access

Shape-optimized metasurface beamformer for high-efficiency full-duplex optical wireless communications across an ultra-wide field-of-view

ZYZhongyi YuanJCJi ChenYWYin Wang

Key Points

  • The aim is to develop a shape-optimized metasurface for enhanced optical wireless communication capabilities.
  • Proposed a shape-optimization strategy for designing freeform metasurfaces.
  • Developed a full-duplex OWC system with a field-of-view exceeding 160°.
  • Evaluated deflection efficiency and data transmission capabilities.
  • Achieved a deflection efficiency over 80% at large angles.
  • Demonstrated a transmission distance of 200 meters.
  • Obtained a single-channel data rate of 225 Gbps.

Abstract

Optical wireless communication (OWC) is a promising technology for sixth-generation (6 G) mobile networks. Establishing high-quality optical links over large deflection angles is crucial for improving OWC performances. Metasurfaces, owing to their subwavelength structures, enable large-angle beam deflection beyond conventional techniques limits. However, without careful structural design, deflection efficiency inevitably decreases with increasing deflection angles. Here, we propose a shape-optimization strategy to design freeform metasurfaces with high-efficiency beam deflection property and low fabrication complexity. Using the shape-optimized metasurface (SOM), we demonstrate a full-duplex OWC system with a field-of-view exceeding 160° and a deflection efficiency over 80%, enabling high-definition, ultra-low-latency video calls. Furthermore, the SOM-based OWC system demonstrates further performance enhancement, achieving a 200 m transmission distance and a 225 Gbps single-channel data rate. Our work offers advantages of high-efficiency, wide angular coverage, high integration and strong scalability, paving the way for revolutionary high-performance and cost-effective OWC systems in the future. Shape-optimized metasurfaces have been developed to enable optical wireless communication systems that simultaneously provide wide angular coverage, high efficiency, long-distance transmission, and high data rates, well suited for next-generation wireless networks.

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Cite This Study

Yuan et al. (2026) studied this question.

synapsesocial.com/papers/69be35e66e48c4981c674781https://doi.org/10.1038/s41467-026-70665-z
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