ACS Energy Letters · 2021 · 150 citations · 71 references
EngineeringThermal RadiationPhotovoltaicsThermal EnergyElectronic DevicesElectrochromic DeviceSolar Cell MaterialsElectrochromic Synergistic SolarSolar Thermal EnergySolar Energy UtilisationElectrical EngineeringSolar PowerIn-space Electric PowerHeat TransferRadiative Heat ManagementElectronic MaterialsFlexible ElectronicsApplied PhysicsSolar CellsThermal EngineeringWideband RegulationEmissivity
Electrochromic devices are key for modulating optical and thermal energy in zero‑energy buildings. The study aims to achieve wideband regulation of both solar and radiative heat using the sun and deep space as sources, enabling large heating and cooling performance. A flexible ultra‑wideband transparent conducting electrode (UWB‑TCE) with low sheet resistance and high optical transmittance is used to switch between solar‑heating and radiative‑cooling modes by controlling electrodeposition morphology for surface plasmon resonance. The UWB‑TCE enables emissivity tuning from 0.12 to 0.94, achieving solar absorptivity/emissivity pairs of (0.60, 0.20) for heating and (0.33, 0.94) for cooling, demonstrating synergistic solar and radiative heat management with potential for heat‑management, camouflage, display, and building energy efficiency.
Electrochromic devices are a key technology to modulate optical and thermal energy for zero-energy buildings. With the sun as the heat source and deep space as the cold source, it would be beneficial to accomplish wideband regulation and control both solar and radiative heat simultaneously to obtain large heating and cooling performance. Here, a flexible ultra-wideband transparent conducting electrode (UWB-TCE) with low sheet resistance (Rs = 22.4 ohm/sq) and high optical transmittance (TUV–vis = 85.63%, Tnear-IR = 87.85%, and Tmid-IR = 84.87%) has been demonstrated to realize an electrochromic device that is capable of synergistic solar and radiative heat management. Enabled by the UWB-TCE, the metal-based electrochromic device can vary its emissivity between 0.12 and 0.94. The device can also switch between solar heating mode (high solar absorptivity and low thermal emissivity) and radiative cooling mode (low solar absorptivity and high thermal emissivity) by controlling the optimal electrodeposition morphology for surface plasmon resonance. The optimal solar absorptivity (α) and thermal emissivity (ε) of solar heating and radiative cooling mode are (α, ε) = (0.60, 0.20) and (0.33, 0.94), respectively. The UWB-TCE and dual-band solar and mid-IR electrochromic device can bring vast opportunities for applications in heat management, camouflage, display, and building energy efficiency.
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