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February 2, 2026Nature Communications2 citationsOpen Access

Hydrocyclone-enhanced scalable photocatalytic hydrogen generation, from macroscale turbulence to nanoscale reaction dynamics

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DYDanhui YangYYYizhou YangFZFanghe Zhou

Key Points

  • To investigate how hydrocyclones can enhance photocatalytic hydrogen generation through multiscale interactions.
  • Developed a hydrocyclone-based photoreactor for hydrogen production.
  • Measured hydrogen yield and solar-to-hydrogen efficiency under simulated sunlight.
  • Created a multiscale model linking macro-scale flow to nanoscale reactions.
  • Achieved a hydrogen yield of 270 mL/h with 5.26% solar-to-hydrogen efficiency.
  • Performance was 4.5 times better than static conditions.
  • Identified an optimal flow rate of 20-30 L/min for efficiency.

Abstract

Photocatalytic hydrogen production faces barriers to industrialization, including inadequate light absorption and limited mass/momentum transfer at scale. Integrating external hydrocyclones into photoreactors is a promising solution, yet the multiscale complexity of hydrocyclone-driven hydrogen generation impedes mechanistic understanding and rational system design. Herein, we build a scalable hydrocyclone-based photoreactor that achieves 270 mL/h hydrogen yield and 5.26% solar-to-hydrogen efficiency under simulated sunlight, as 4.5 times higher than static conditions. We develop a hierarchical multiscale model combining computational fluid dynamics, solid mechanics and density functional theory, which connects macro-scale hydrocyclone flow strain to atomic-level photocatalytic processes. Here, we show that shear stress-induced nanoscale lattice restructuring of the catalyst modulates photoexcitation pathways, triggers a threshold-activated catalytic amplification effect, and identifies an optimal flow rate of 20-30 L/min. These findings reveal a multiscale force-chemical coupling mechanism linking reactor-scale hydrocyclone flow fields to lattice-scale strain-driven catalytic enhancement, guiding large-scale photocatalytic hydrogen production.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/6980fd9dc1c9540dea80f5d6https://doi.org/10.1038/s41467-026-68895-2
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