Alcogel-Based Interfacial Evaporation for Vertical Thermal Diode-Structured Smart Walls with Radiant Cooling.
basic_science · Level V
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- Record sourced from PubMed, PMID 40151019.
- Also identified by DOI 10.1002/adma.202500548.
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Abstract
Traditional building envelopes with constant thermophysical properties constrain their capabilities in temperature regulation. Whether it is possible to achieve single-direction heat transfer along building envelopes with climate-adaptative thermophysical properties to enhance passive heat gain in winter and thermal dissipation in summer? In this work, through the capillary effect in interfacial evaporation and thermal diode structure, single-direction heat transfer with passively adjustable thermal properties in a vertical building envelope is practically achieved. An evaporation-condensation-based smart wall (ECSW) is manufactured for spontaneous and continuous cooling/heating supply to the built environment. The ECSW features climate-adaptative heat transfer characteristics with heat transfer coefficient transiting from 3.33 to ≈30 W m<sup>-2</sup> K<sup>-1</sup>. Additionally, coupling with radiant cooling and photothermal capabilities, ECSW shows excellent thermal performances, i.e., a heat transfer at 5.44 W m<sup>-2</sup> by radiant cooling with a 5 °C cooler surface, and a heat transfer at 387.68 W m<sup>-2</sup> under solar illumination at 1000 W m<sup>-2</sup>. Simulation results show that the ECSW enables building energy savings at 66.47% in Kunming. This study first reports vertical thermal diode building envelopes utilizing natural heating/cooling sources through interfacial evaporation for passive temperature regulation with low costs, performance stability and energy-saving potentials for smart and sustainable buildings.