Wu Yingjie, Wang Si, Zhang Renyan, Yu Tao, Xu Mingfeng, Li Xiong, Pu Mingbo, Ma Xiaoliang, Guo Yongcai, Su Yuanjie, Tai Huiling, Luo Xiangang
National Key Laboratory of Optical Field Manipulation Science and Technology, Chinese Academy of Sciences, Chengdu, 610209, China.
State Key Laboratory of Optical Technologies on Nano-Fabrication and Micro-Engineering, Institute of Optics and Electronics, Chinese Academy of Sciences, Chengdu, 610209, China.
Small. 2024 Jun;20(26):e2308661. doi: 10.1002/smll.202308661. Epub 2024 Jan 23.
Passive daytime radiative cooling (PDRC) materials with sustainable energy harvesting capability is critical to concurrently reduce traditional cooling energy utilized for thermal comfort and transfer natural clean energies into electricity. Herein, a versatile photonic film (Ecoflex@BTO@UAFL) based on a novel fluorescent luminescence color passive radiative cooling with triboelectric and piezoelectric effect is developed by filling the dielectric BaTiO (BTO) nanoparticles and ultraviolet absorption fluorescent luminescence (UAFL) powder into the elastic Ecoflex matrix. Test results demonstrate that the Ecoflex@BTO@UAFL photonic film exhibits a maximum passive radiative cooling effect of ∽10.1 °C in the daytime. Meanwhile, its average temperature drop in the daytime is ~4.48 °C, which is 0.91 °C higher than that of the Ecoflex@BTO photonic film (3.56 °C) due to the addition of UAFL material. Owing to the high dielectric constant and piezoelectric effect of BTO nanoparticles, the maximum power density (0.53 W m, 1 Hz @ 10 N) of the Ecoflex@BTO photonic film-based hybrid nanogenerator is promoted by 70.9% compared to the Ecoflex film-based TENG. This work provides an ingenious strategy for combining PDRC effects with triboelectric and piezoelectric properties, which can spontaneously achieve thermal comfort and energy conservation, offering a new insight into multifunctional energy saving.
具有可持续能量收集能力的被动式日间辐射冷却(PDRC)材料对于同时减少用于热舒适性的传统冷却能源以及将自然清洁能源转化为电能至关重要。在此,通过将介电BaTiO(BTO)纳米颗粒和紫外吸收荧光发光(UAFL)粉末填充到弹性Ecoflex基质中,开发了一种基于新型荧光发光颜色被动辐射冷却并具有摩擦电和压电效应的多功能光子薄膜(Ecoflex@BTO@UAFL)。测试结果表明,Ecoflex@BTO@UAFL光子薄膜在白天表现出最大约10.1°C的被动辐射冷却效果。同时,其白天的平均温度下降约为4.48°C,由于添加了UAFL材料,比Ecoflex@BTO光子薄膜(3.56°C)高0.91°C。由于BTO纳米颗粒的高介电常数和压电效应,基于Ecoflex@BTO光子薄膜的混合纳米发电机的最大功率密度(0.53 W m,1 Hz @ 10 N)比基于Ecoflex薄膜的摩擦电纳米发电机提高了70.9%。这项工作为将PDRC效应与摩擦电和压电特性相结合提供了一种巧妙的策略,可自发实现热舒适性和节能,为多功能节能提供了新的见解。