TY - JOUR
T1 - Hierarchically Designed Electrospun Passive Daytime Radiative Cooling Metafabric Enabling Moisture Transport and Fire Safety
AU - Chen, Silu
AU - Li, Yin
AU - Zhou, Zelin
AU - Shao, Yiwei
AU - Liu, Yang
AU - Kang, Mingjia
AU - Li, Dinghua
AU - Zhang, Wenchao
AU - Yang, Rongjie
AU - Zhu, Jingxu
AU - Xu, Tongwen
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Passive daytime radiative cooling (PDRC) textiles can reduce thermal stress by reflecting sunlight and emitting heat through the atmospheric window, yet practical use is limited by insufficient solar scattering, moisture transport, and polymer fire hazards. A multifunctional electrospun metafabric was developed via hierarchical structural design and compositional optimization. Specifically, semi-cylindrical polyvinylidene fluoride (PVDF) fibers enhanced backscattering, subwavelength roughness promoted diffuse scattering, and exposed BaSO4 particles maximized particle-air refractive index discontinuity to strengthen Mie resonances. The metafabric achieved 94.0% solar reflectance and 91.2% mid-infrared emissivity, yielding the lowest theoretical cooling power demand (23.6 W·m−2) among tested samples. Outdoor field tests demonstrated ∼7.1°C lower temperature than bare skin across seasons, and building-scale simulations predicted 40%–58% cooling-energy savings across major climate zones. Dynamic wetting ensured physiological comfort through rapid sweat transport and a shift from evaporative to radiative cooling, reducing perspiration burden by 77.1% vs. cotton under typical summer conditions. For fire safety, the metafabric exhibited a low total heat release (4.8 kJ·g−1), a high char residue (45.0%), and suppressed toxic volatile emissions. This integrated design supports PDRC textiles as a sustainable cooling strategy, simultaneously optimizing cooling, comfort, and fire safety for both occupational and emergency wear.
AB - Passive daytime radiative cooling (PDRC) textiles can reduce thermal stress by reflecting sunlight and emitting heat through the atmospheric window, yet practical use is limited by insufficient solar scattering, moisture transport, and polymer fire hazards. A multifunctional electrospun metafabric was developed via hierarchical structural design and compositional optimization. Specifically, semi-cylindrical polyvinylidene fluoride (PVDF) fibers enhanced backscattering, subwavelength roughness promoted diffuse scattering, and exposed BaSO4 particles maximized particle-air refractive index discontinuity to strengthen Mie resonances. The metafabric achieved 94.0% solar reflectance and 91.2% mid-infrared emissivity, yielding the lowest theoretical cooling power demand (23.6 W·m−2) among tested samples. Outdoor field tests demonstrated ∼7.1°C lower temperature than bare skin across seasons, and building-scale simulations predicted 40%–58% cooling-energy savings across major climate zones. Dynamic wetting ensured physiological comfort through rapid sweat transport and a shift from evaporative to radiative cooling, reducing perspiration burden by 77.1% vs. cotton under typical summer conditions. For fire safety, the metafabric exhibited a low total heat release (4.8 kJ·g−1), a high char residue (45.0%), and suppressed toxic volatile emissions. This integrated design supports PDRC textiles as a sustainable cooling strategy, simultaneously optimizing cooling, comfort, and fire safety for both occupational and emergency wear.
KW - electrospun nanofibers
KW - fire safety
KW - hierarchical structure
KW - moisture management
KW - passive radiative cooling
KW - personal thermal management
UR - https://www.scopus.com/pages/publications/105041605847
U2 - 10.1002/smll.73727
DO - 10.1002/smll.73727
M3 - Article
AN - SCOPUS:105041605847
SN - 1613-6810
JO - Small
JF - Small
ER -