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April 18, 2026Photonics0 citationsOpen Access

Virtual Optical Waveguides for Particle Transport and Sorting

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LZLiuhao ZhuXZXi ZhangXZXiang Zang

Key Points

  • Explore a reconfigurable system for precise transport and sorting of micro- and nano-particles.
  • Developed a virtual optical waveguide using beam-shaping strategy
  • Constructed interference-free optical channels without physical boundaries
  • Enabled programmable particle transport along complex trajectories
  • Implemented size-dependent sieving and intrinsic material filtering
  • Achieved precise size-dependent sorting of particles
  • Demonstrated effective shielding from surrounding particle perturbations
  • Enabled controlled transport of scattering-dominated particles while rejecting others

Abstract

Precise manipulation and directed transport of micro- and nano-particles are cornerstones of emerging lab-on-a-chip technologies. Traditional optofluidic systems that combine optical tweezers with microfluidic channels enable long-range transport. However, they rely on fixed physical boundaries that lack reconfigurability. To bridge this gap, we propose a reconfigurable virtual optical waveguide (VOW) based on a discretized beam-shaping strategy. By superposing two orthogonally polarized shaped beams, we construct interference-free optical channels without physical boundaries. This platform enables programmable transport along complex trajectories, including space-filling Hilbert curves that maximize interaction path length, and shields the transport channel from perturbations induced by surrounding particles. Crucially, the VOW offers multi-dimensional sorting capabilities: (i) it performs precise size-dependent sieving via tunable channel widths, and (ii) it functions as an intrinsic material filter by stably guiding scattering-dominated particles (e.g., gold) while rejecting gradient-dominated dielectric ones. This work establishes a versatile, contactless strategy for adaptive optical logistics and on-chip material purification.

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Cite This Study

Zhu et al. (2026) studied this question.

synapsesocial.com/papers/69e320fd40886becb65402c8https://doi.org/10.3390/photonics13040378
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