Abstract
Passive radiative cooling effectively reduces energy consumption but often suffers from winter overcooling. To address this challenge, we report a bioinspired rhombic-patterned vanadium dioxide (VO2) metasurface intelligent thermal radiative device (RITD) for self-adaptive all-weather building thermal regulation. Through tailoring of the synergistic coupling between the metal–insulator transition (MIT) of VO2 and the multiple resonances of a Fabry–Pérot (F–P) cavity and subwavelength periodic VO2 arrays, the RITD achieves a dynamic emittance modulation (Δε) of 0.65 (from 0.27 to 0.92) within the atmospheric transparency window (8–14 μm). Crucially, the bioinspired architecture maintains a stable, low solar absorptance (αsol = 0.23), effectively suppressing excessive solar heating and thus maximizing the net cooling power during intense sunlight exposure. With a tungsten-doped tunable phase-transition threshold (25–68 °C), the RITD demonstrates a daytime subambient cooling of ∼14 °C and a nighttime heat retention of ∼3 °C above the ambient temperature. Building energy simulations across multiple Chinese cities reveal that RITD-integrated roofs deliver substantial annual energy savings by simultaneously addressing cooling demands in summer and insulation needs in winter. This mechanism-driven design provides a scalable and robust strategy for advancing zero-energy buildings and sustainable thermal management technologies.
| Original language | English |
|---|---|
| Pages (from-to) | 38774-38785 |
| Number of pages | 12 |
| Journal | ACS Applied Materials and Interfaces |
| Volume | 18 |
| Issue number | 28 |
| DOIs | |
| Publication status | Published - 22 Jul 2026 |
| Externally published | Yes |
Keywords
- Adaptive thermal management
- Biomimetic metasurface
- Dynamic radiative cooling
- Low solar absorptance
- Vanadium dioxide (VO)
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