Zhao Xinyu, Sheng Mingfeng, Tang Huajie, Pan Haodan, Guo Chenyue, Zhao Dongliang
School of Energy and Environment, Southeast University, Nanjing, Jiangsu 210096, China.
Institute of Science and Technology for Carbon Neutrality, Southeast University, Nanjing, Jiangsu 210096, China.
ACS Appl Mater Interfaces. 2024 Aug 14;16(32):42481-42490. doi: 10.1021/acsami.4c08207. Epub 2024 Aug 2.
As one of the least energy-efficient components in buildings, transparent building envelopes are responsible for approximately 60% of the total energy losses. Although controlling solar transmittance through electrochromic modulation is an effective method for temperature management in these structures, a dynamic control strategy for solar light on curved transparent building envelopes is still lacking. In this study, we introduce a dual-mode flexible electrochromic device based on reversible silver deposition for curved transparent building envelopes. The device operates by reversibly depositing and dissolving silver on a flexible polyethylene terephthalate-indium tin oxide (PET-ITO) substrate, controlled through the application and removal of pulsed voltage. This mechanism enables rapid switching between radiative cooling and solar heating modes, leading to modulation of solar reflectance from 89.1% to 15.7% and solar transmittance from 0.02% to 72.9%. Under approximately 700 W/m of solar irradiance, the device achieves an average temperature reduction of 1.6 °C (with a maximum reduction of 4.3 °C) compared to ambient temperature in radiative cooling mode. In solar heating mode, the device achieves an average temperature increase of 17.1 °C (with a maximum increment of 23.7 °C) compared to ambient temperature. Simulation results show that the dual-mode flexible electrochromic device could offer all-season thermal regulation for curved transparent building envelopes and achieve a maximum of over 50% annual HVAC energy savings.
作为建筑物中能源效率最低的组件之一,透明建筑围护结构约占总能量损失的60%。尽管通过电致变色调制控制太阳透射率是这些结构中温度管理的有效方法,但对于弯曲透明建筑围护结构上的太阳光动态控制策略仍然缺乏。在本研究中,我们为弯曲透明建筑围护结构引入了一种基于可逆银沉积的双模式柔性电致变色器件。该器件通过在柔性聚对苯二甲酸乙二醇酯-氧化铟锡(PET-ITO)基板上可逆地沉积和溶解银来运行,通过施加和去除脉冲电压进行控制。这种机制能够在辐射冷却和太阳能加热模式之间快速切换,导致太阳反射率从89.1%调制到15.7%,太阳透射率从0.02%调制到72.9%。在约700 W/m的太阳辐照度下,与辐射冷却模式下的环境温度相比,该器件实现了平均温度降低1.6°C(最大降低4.3°C)。在太阳能加热模式下,与环境温度相比,该器件实现了平均温度升高17.1°C(最大升高23.7°C)。模拟结果表明,双模式柔性电致变色器件可为弯曲透明建筑围护结构提供全季节热调节,并实现高达50%以上的年度暖通空调节能。