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February 14, 2026Nature Communications0 citationsOpen Access

Self-cleaning hierarchical thermal cloak

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HGHetao GuoWLWenzhuo LiLJLiran Jing

Key Points

  • The aim is to develop a durable thermal cloak with self-cleaning properties for effective thermal invisibility.
  • Engineered using femtosecond laser direct writing techniques.
  • Implemented dynamic superhydrophobic micropillar arrays for enhanced performance.
  • Tested durability under UV irradiation, water-flow flushing, and thermal cycling.
  • Achieved superior cloaking performance with increased mechanical and thermodynamic durability.
  • Self-cleaning functionality effectively removes contaminants through van der Waals forces of bulk droplets.
  • Performance remained robust after over 24 hours of exposure to harsh environmental treatments.

Abstract

Thermal invisibility has captivated the research interest for decades. Recent theories envisioned the promising schemes for this purpose using the near-wavelength antennas; because it enabled precise control over the radiation for invisibly cooling while preserving the cloaking within detectable band. However, pushing this delicate device to real-world applications raises two essential challenges: large-scale fabrication of the structures featuring nanoscale accuracy and durably safeguarding the function from both erosion and various contaminant intakes. Here, we report a self-cleaning hierarchical thermal cloak using femtosecond laser direct writing. The cloak is engineered with finely configured dynamic superhydrophobic micropillar arrays; on top of the micropillars, the antennas are devised for direct tailoring to ensure the large-area manufacturing scalability and feasibility. We demonstrate that the co-created architecture has superior cloaking performance with boosted mechanical and thermodynamic durability; moreover, it enables self-sweeping of the contaminants through van der Waals forces of an impact bulk droplet, thus completely regaining the excellent thermal cloaking. Notably, both the self-cleaning and cloaking functionalities remain robust even after over 24 hours of harsh treatments, including UV irradiation, water-flow flushing and thermal cycling.

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Cite This Study

Guo et al. (2026) studied this question.

synapsesocial.com/papers/698fd276306598e8538de93dhttps://doi.org/10.1038/s41467-026-69122-8
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