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May 12, 2026Nature Communications5 citationsOpen Access

Freeform optical flow based on meta-conveyors for compact, programmable in situ nanomanipulation

TLTianyue LiXLXiao Yun LiZGZengyang Gao

Key Points

  • The aim is to develop a meta-conveyor technique for programmable optical flow manipulation of nanoparticles.
  • Implemented a meta-conveyor technique using metasurfaces for optical flow encoding.
  • Conducted theoretical analysis of phase gradient switching and polarization control.
  • Validated the technique using a maze-solving experiment with nanoparticles.
  • Achieved stable transport and on-demand stopping of nanoparticles with user-defined paths.
  • Demonstrated efficient phase gradient switching enabling tunable optical forces.
  • Successfully maneuvered nanoparticles through a maze while avoiding obstacles.

Abstract

Programming light flow offers significant potential for diverse applications. However, conventional spatial light modulators are bulky, have large pixels, and slow switching. Miniaturized metasurface strategies offer flexibility but are limited to radial or azimuthal phase gradients, hindering free shaping of light flow in ultracompact footprints. Here, we present a meta-conveyor technique (MCT) using metasurfaces to encode user-defined optical flow, demonstrating programmable stable transport of nanoparticles (NPs) with arbitrary open-path round‑trip movement and on‑demand stopping. Theoretical analysis reveals efficient phase gradient switching from hybrid propagation and geometric phases, enabling tunable lateral optical forces via input and output polarization control. We validate universality with a maze‑solving meta‑conveyor that drives NPs from entrance to exit while avoiding dead ends. The MCT provides a compact, passive platform for programmable on‑chip manipulation, opening avenues for heterogeneously integrated clinical devices in minimally invasive and extreme environments.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6a02c2b9ce8c8c81e96403b9https://doi.org/10.1038/s41467-026-73024-0
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