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April 3, 2026Advanced Functional Materials2 citations

Superhydrophobic Thermochromic Coating With Dual Photo‐Electrothermal Modulation for All‐Season Energy Efficiency Smart Window

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ASAlix Marcelle Sansi SeukepZCZhixiang CuiDPDamas Rossel Pandzou

Key Points

  • To develop a multifunctional smart window coating that improves energy efficiency by regulating sunlight and temperature.
  • Designed a sandwich-structured coating with multiple layers: thermochromic, photothermal, and electrothermal.
  • Integrated vanadium dioxide (VO2) and silver nanowires (AgNWs) in the coating for solar modulation ability.
  • Conducted performance tests for luminous transmittance, solar modulation, and thermal emissivity.
  • Achieved luminous transmittance of 73.9% and solar modulation of 12.48%.
  • Reduced HVAC energy consumption by 36.73% and carbon emissions to 62.8 kg m−2 per year.
  • Showcased superhydrophobicity with a water contact angle of 152° and delayed ice formation significantly.

Abstract

ABSTRACT Vanadium dioxide (VO 2 )‐based thermochromic smart windows enable autonomous regulation of sunlight for building energy savings; however, challenges remain in achieving high visible transmittance, low transition temperature, and reliable controllability. Herein, this study presents a sandwich‐structured multifunctional coating that integrates superhydrophobicity, thermochromism, and photothermal–electrothermal responsiveness. The system comprises a transparent polydimethylsiloxane (PDMS)/MXene–silver nanoparticles (AgNP) photothermal layer, a conductive silver nanowires (AgNWs) electrothermal interlayer, and a VO 2 ‐embedded polyvinylidene fluoride‐trifluoroethylene (PVDF‐TrFE)/PDMS nanofiber thermochromic layer with superhydrophobicity for solar thermal switching. This design enables rapid and energy‐efficient VO 2 phase transitions, achieving luminous transmittance of 73.9% and solar modulation of 12.48%. Furthermore, the coating adaptively regulates thermal emissivity, enhancing radiative cooling under hot conditions and minimizing heat loss in cold climates, resulting in a 36.73% reduction in annual heating, ventilation, and air conditioning (HVAC) energy consumption and mitigation of carbon emissions to 62.8 kg m −2 . Its micro/nanostructured surface exhibits excellent superhydrophobicity (152° water contact angle, 5.1° ± 0.7 sliding angle), providing self‐cleaning capability and strong anti‐icing performance by delaying ice formation 12.3‐fold and reducing ice adhesion to 31.4 N compared with bare glass. This integrated design overcomes optical–thermal–durability trade‐offs and demonstrates strong potential for energy‐efficient smart window applications in sustainable buildings.

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Cite This Study

Seukep et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e5f5a333a821460caffhttps://doi.org/10.1002/adfm.75218
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